Glom: Information Agglomerates-an Organic Representation for Quantitative Information Matthew Richard Grenby BA, English and American Literature (June 1993) Harvard University Submitted to the Program in Media Arts and Sciences School of Architecture and Planning in partial fulfillment of the requirements for the degree of Master of Science at the Massachusetts Institute of Technology June 1998 0 Massachusetts Institute of Technology, 1998 All rights reserved. Author: tProgram in Media Arts and Sciences May 8, 1998 Certified by: John Maeda Assistant Professor of Design and Computation MIT Media Laboratory Thesis Advisor Accepted by 4 A!1Z" A by z&,g . Stephen A. Benton Chair Departmental Committee on Graduate Students Program in Media Arts and Sciences JON!"*- 91998 ~, Glom: Information Agglomerates-an Organic Representation for Quantitative Information Matthew Richard Grenby Submitted to the Program in Media Arts and Sciences School of Architecture and Planning On May 8th, 1998 In partial fulfillment of the requirements for the degree of Master of Science Massachusetts Institute of Technology Abstract There exists an imbalance between the sheer mass of information we feel responsible for and the tools we use to help us make sense of this information. This thesis describes a new approach to representing large bodies of quantitative information called GLOMS. These information agglomerates take advantage of the user's innate visual faculties and familiarity with everyday objects to provide an interactive, visual and computational representation that facilitates retention of the salient features of a given data set. The defining characteristics of a GLOM representation are introduced through a series of prototypes and the description of a large controlled system: BLITZGLOM. This system visualizes data garnered from the web-based game BLITZ that was created for this thesis. Thesis Advisor: John Maeda Assistant Professor of Design and Computation This research was sponsored by the Things That Think Consortium Glom: Information Agglomerates-an Organic Representation for Quantitative Information Matthew Richard Grenby The following people served as readers for this thesis: 1A fl' Reader: \ William J. Mitchell Dean of the School of Architecture and Planning Massachusetts Institute of Technology Reader: /VL Hiroshi Ishii Associate Professor of Media Arts and Sciences 5 Acknowledgm ents ........................................................... 7 Introduction ................................................................... M otivation .................................... Accomplishments ..................... Thesis Scope and Overview ............. Related W ork .............................................. Sandia Labs ....................... Intel Research....................... ChernoffFaces ...................... First Prototypes .......................................... Gradus ........................... M unsell ........................... StockGLOM ....................... Chicago Tribune ..................... BLITZ ....................................................... Introduction........................ Related Work and Meta-Design .......... FirstPrototypes: GLOP................ Implementation...................... Level Editor/Level Graphics ............. .8 ............ ............ . .................... 12 ............ 17 ................. 20 ................. 24 ................ 26 ............ 26 ................. ................. ..... .............. .................... 32 32 37 38 ............ 38 ................. 44 ................ .... 50 ............ .51 .................... 52 GLOM ......................................................................... ...................... Introduction .............. GLOM characteristics............................. Implementation: BLITZGLOM ...................... The Layers..................................... The A xes ...................................... Conclusion .................................................................. Summary ..................................... Future Directions ................................ 9 10 58 58 .59 81 .85 85 88 .88 .91 Appendix A: Interview with a BLITZ Player........................92 101 Appendix B: Game Statistics ............................................ Bibliography...................................................................139 1 Acknowledgments I would like to thank the readers of this thesis, Professor Ishii and Dean Mitchell for their time and insight. This thesis and the work it comprises was not created in a vacuum; it would not have been possible without the help and understanding of many others. First, I would like to extend my sincere gratitude to Professor John Maeda. For all my peculiarities, there are only a few people whom I feel really understand my goals and ambitions, John is one of them. I am indebted for his unfailing assistance and faith from the days before there was any reason to believe I could do the things that needed to be done. Next, I would like to thank the other inaugural members of the Aesthetics and Computation group. Reed, Tom, David and Chloe: it's been an interesting and rewarding ride. Thank you for all your enthusiasm and for putting up with my nalvet6. I would also like to thank the urops in ACG, especially the Doctor, Jarhead, and Melissa for all your help and hard work. Thanks too to those I could always turn to for help or just to take my mind off things for a while: the crew in NECSYS. Mas, Jon, Will you are the salt of the earth. I would also like to send my appreciation out to those on the second floor who always treated me with professionalism and a smile: Santina, Laurie, Linda, Deb... thank you. Thanks too to Ellen for helping me publicize BLITZ! GLOM:Information Agglomerates For suggesting I apply to the Media Lab when I did and for helping me to do so, Bob Stein. For directly or indirectly making it all possible, Nicholas Negroponte. For putting up with our need for Lebensraum, the boys of TMG: Brygg, Matt, Scott, and the most talented cantakerous designer-boy I know-D. For adapting his PERL server to feed the StockGLOM project with current market information, Jon Orwant. For providing the environment that made Gradus possible and for giving me the freedom to continue work on and publicize it, Art Center College. For organizing and supporting my part in the Tribune project, Glorianna Davenport, Ron MacNeil, and the editors, reporters, photographers and videographers at the Chicago Tribune who worked with us. For enduring my persistent programming questions and for passing on various gems of wisdom, Reed Kram, Doug Soo, Rob Poor, John Underkoffler, Phillip Tiongson, Scott Brave, Chloe Chao, Matt Gorbet, Christopher Kline, Nelson Minar, Jon Orwant, David Small, Tom White, Brygg Ullmer. For support, Tony, Connie, Elizabeth, Barbara. Kudos to my roommates for putting up with me. Love to my parents who have always supported me however crazy the endeavor. Wulfie: "woof!" In memory of Rosita Grenby. May 1998 Cambridge,Massachusetts GLOM:Information Agglomerates 2 Introduction The artist became the foundation on which progress in the reconstruction of life could advance beyond the frontiers of the all-seeing eye and the all-hearingear.Thus a picture was no longer an anecdote nor a lyric poem nor a lecture on morality nor a feast for the eye but a sign and symbol of this new conception of the world. (Lissitzky, 1920) The purpose of this thesis is to identify new visual techniques to be employed in the representation of quantitative information. Three years shy of the new millennium, the world finds itself awash amid the overwhelming mass of implicit and explicit streams of data. Sensor technologies-our augmented senses of seeing and hearing-and processor technologies have improved at an exponential rate. In combination with an increasing level of connectivity, these technologies provide us with and give us access to a historically unprecedented volume of raw information. Our ability to process this flow of information depends largely on innovative software tools. Not thirty years have passed since the introduction of new and powerful tools such as the electronic spreadsheet and the relational database. These tools were developed to streamline the flow of information processing. In this domain, they have enjoyed enormous success. At the same time, the approach to information visualization that this type of tool demonstrates falls short in many respects, particularly in leveraging off our enormous innate abilities to process visual, i.e. pictorial, information. GLOM:InformationAgglomerates As the thesis title suggests, our efforts have focused on the identification of organic techniques for the visual representation of information. By organic we refer to methodologies that are characterized by a. lifelike motion, b. agglomerations or grouped masses of atomic components. We choose to employ organic techniques because these kinds of techniques have yet to be invented for or implemented at a significant scale in this domain of information visualization. We ask the question: can an organic approach to the visual organization and display of quantitative data be identified and implemented? In striving to answer this question, we have grounded our thesis research in the creation of a series of small-scale prototypes. Individually, these prototypes feature different techniques. As a series, these prototypes share a common theme in that they all are working examples of an organic approach to information visualization. In addition, we have striven to demonstrate that the organic approach to information visualization is versatile. To this end, the prototypes have been designed to represent bodies of raw data from different domains. Drawing from our experiences with the prototype applications, the thesis advances the organic approach to information representation through the description of a large-scale, work in progress implementation of these concepts: BLITZGLOM. The completed companion system that generates the data for the BLITZGLOM representation is also considered in detail. Before proceeding, it is important to note that the work described in this thesis is the product of a close collaboration between the author and Professor John Maeda. This collaboration persisted through the formation and first two years of the Aesthetics and Computation Group at the MIT Media Lab. The prototypes, projects and many of the ideas described in this thesis are the direct result of this collaboration, as evidenced by the frequent use of the pronoun "we". 2.1 Motivation We are motivated by the perception of a pervasive frustration with traditional methods of visualizing information. The popular press is filled with pieces that point to shortcomings in existing tools and methodologies for processing bodies of data. We hope to provide an alternative to existing GLOM:Information Agglomerates methods of representation. We do not seek to replace current tools; rather we strive to augment our ability to process information by creating new opportunities for the user to increase their awareness of the underlying trends and biases that exist in their data. The last century has seen considerable advances in the practice and theory of visual design. For the most part, the goal of refinement in this field has been to facilitate the subjective experience that surrounds the communication of information. Historical movements have approached this challenge in various ways, proposing a variety of approaches to the problem of visual communication. On one extreme, we find proponents of the dogmatic application of identified guidelines of design. This approach is exemplified by manifesto-driven movements such as Futurism. Perhaps a more enlightened approach, formalized in early Modernist circles, is a methodology that involves the identification of the elements that comprise the fundamental mechanisms of communication design. We are motivated by, and seek to incorporate this approach in our definition and exploration of the emerging field of organic information visualization. "Overemphasis", Paul Zelanski notes, "on either form or function can be carried to extents that some people judge negatively." (Zelanski, 1996) Existing tools and methodologies for the processing and interpretation of data are exceedingly functional. Issues of form are not considered at length. Spreadsheet representations, for example, are heavily gridded; the information they present is primarily alphanumeric. We are motivated to push beyond the existing boundaries in the domain of "formal" information. We seek to integrate form-based solutions with proven text or number based methods. In short, the thesis proposes and describes the implementation through computational means of visual representations informed by a traditional aesthetic sensibility. 2.2 Accomplishments - Formal definition of the key features of the organic architecture that characterizes the ideal GLOM system. - Description and implementation of four discrete methods for agglomerating data sets including the "Vector Slide" and "AutoGlommit" techniques. GLOM:Information Agglomerates - Deployment of GLOM systems on SGI, Macintosh, Windows and Java platforms. - Development of four key prototype GLOM systems: Gradus, Munsell, StockGLOM and TribuneTOC. - Development of BLITZ, the web-based Java game. - Design and early development of BLITZGLOM, a GLOM visualization for data collected from the BLITZ game system. - Development of the communications and database layers for the BLITZ system. - Development of GLOP, a falling brick puzzle game and an early candidate for generating data. - Gradus prototype accepted as a Design Sketch at SIGGRAPH '97. - BLITZ receives peer acclaim on the web: "new" and "cool" on www.gamelan.com (98-04-07); www.jars.com rated in the top 5%, receives a score of 976/1000 (98-05-07); www.happypuppy.com reviews BLITZ and posts a link (98-05-08); solicited by SEGAsoft to develop a game for their site (98-04-29); several sites post links or request that we upload the game to their site: among them are www.bonus.com and www.atomicjava.com. - Approximately 5,000 people play BLITZ during the first forty days it is posted. 2.3 Thesis Scope and Overview The thesis document develops the notion of organic information architecture through the description and evaluation of prototype implementations of our ideas. In order to establish a sense of context, the document begins in Chapter 3 with a consideration of related work. We consider related work of two kinds.The first kind is work that has changed our ideas about what is possible in the realm of information visualization. This work has served as an inspiration to us in our attempts to break new ground. The second kind is related work that we feel parallels our own efforts in specific domains. This work is compared and contrasted against our own efforts in order to provide the reader with an opportunity to differentiate and evaluate our findings. Chapter 4 is dedicated to the description and evaluation of early thesis prototypes. These early prototypes include: GRADUS, a proposed visual- GLOM:Information Agglomerates ization of the English language; Munsell, a three-dimensional GLOM representation of RGB color space; the Chicago Tribune project, a GLOM table of contents for online newspapers; and StockGLOM, a visualization of a live feed of mutual fund information. Chapter 5 introduces BLITZ, the online Java-based game that was conceived as a controlled source of data to be visualized. The development phase of BLITZ is documented, along with issues of implementation and residual projects such as the level editor that was implemented to extend the functionality of the game. Finally,Chapter 6 generalizes glomming techniques deployed in the early thesis prototypes through the description of BLITZGLOM: a GLOM representation based on the data generated by the BLITZ game and related database systems. GLOM:Information Agglomerates 3 Related Work The related work presented in the following section can be broken down into at least two main classifications in juxtaposition with our own work. Firstly, there is the work that we have found to be directly inspirational. This class of work has had a significant impact on the way we think about visualizing information. The work itself may or may not have broken new ground in the field of information architecture, but at the time we came across it our eyes were opened and a new realm of possibilities seemed to open up. This type of work moved us, and more often than not resulted in a sea change in our methodology. The second main classification of related work encompasses work we feel runs in parallel or intersects with our established direction. Works of this kind serve to encourage us in a particular direction or warn us with regards to the pitfalls inherent in unforeseen eventualities. While varied in terms of the individual source, upon first review it seems to us that our inspiration rests on a relatively constricted foundation. The majority of our stimulus seems to come from within the field of information architecture. Certainly, this is a responsible approach. After all, it is of paramount importance to familiarize oneself with the history and state-ofthe-art of the field in which you seek to innovate. However, we aspire to create systems that lie "outside the box". It is our intuition that inspiration for this type of innovation comes from within. That said, this notion of "within" is not a self-sustaining one. Simply, it is our belief that a diverse GLOM:Information Agglomerates AnnaUal Returns Fig.3-1: Lisa Strausfeld's FinancialViewpoints and David Small's Navigating Shakespeare two seminal projects from the former Visual Language Workshop at the MIT Media Lab. Both pieces focused on the three-dimensional representation of text and numerical information. These works inspired us to begin the study of computational information architecture. set of inputs increases one's ability to synthesize an increasingly variegated set of outputs. Although not formally documented here, it bears mentioning that a significant portion of inspiration comes from the study of nature and natural systems. Thus, methodological books such as D'Arcy Thompson's "On Growth and Form" (Thompson, 1942) and surveys such as "The Parsimonious Universe: Shape and Form in the Natural World" (Hildebrandt, 1996) receive special attention. In addition, we find tremendous encouragement in the study of the history of aesthetics. On the surface, our work is easily reconciled with the field of graphic design. In GLOM:Information Agglomerates this area, we are guided by the masters: individual such as the late Paul Rand, Jan Tschichold and El Lissitzky. Perhaps less immediately evident is the inspiration we draw from the field of architecture. In that the bulk of our solutions are implemented as numerical codes, there is of course the problem of software system architecture to be considered for each project. This relationship to the study of architecture, while exceedingly abstract, is very real; and it is our two and three-dimensional visual representations that are most closely aligned to the ancient discipline. We are concerned with issues of lighting, space, form and navigation. Our materials are not mortar and stone, but polygons and parametric curves. We constrain the viewer's eye and their ability to move through our constructs. We control the source of light. Our structures collapse under their own complexity-simply refusing to render-in the same way the under-engineered building fails under its own bulk. This level of control, and the desire to wield it in a responsible and effective manner spurs our interest in the study of sacred and natural geometries. Numbers such as eand pi, ratios and sequences that occur throughout the natural world are at once intriguing and dangerous. In that they are so well known, one runs the risk of cliche through an unconsidered application of these "ingredients". In spite of the potential drawbacks, we maintain a stolid belief in the merits and potency of these numbers and look to the fields of design and architecture for successful examples their integration. Fig.3-2: The Cone Tree. Developed at Xerox Parc it is now marketed by Xerox spinoff InXight. The Cone Tree organizes vast numbers of files in a tree structure. Multi-page documents can be seen on a single screen. The structure transforms in real-time, allowing the browser to navigate the entire document heirarchy by wrapping it in a 3-dimensional cone. GLOM:Information Agglomerates Of particular interest are four fields of architecture: Classical, Gothic, Modern and Structural Rationalism. We look to the Classic and the Modern for their seeming lack of complexity: N.B. this quality of simplicity, of conservation is distinct from a lack of sophistication. Both of these approaches to design exhibit an interest in the identification and glorification of the essential elements of design. In isolation, these elements of course have inherent limitations; i.e. systems based solely on these basic components run the risk of sterility. It is for the successful integration of these elements in intensely complex systems that we strive. This is why we find inspiration in portions of the Gothic. It is not so much the pure aesthetic of the style as much as it is the pervasively organic nature of these projects. Many Gothic cathedrals are the products of generations of labor and design. The final construct bears varying degrees of similarity to the original plan. What is impressive is not the simply the amount of time it took to construct these buildings, but rather the process of that construction: the way in which the final form was realized. These are stratified, living monuments: fossils of vision. In our own projects, we have complete control over the same building process. In the computer, we have a "workforce" that is able to labor at a tireless pace. As such, we aspire to implement the essence of the lessons of organic architecture we are able to extract from the study of the history of the field. This implementation will use the digital medium to full advantage in an attempt to drastically compress the production timeframe. Among the individual architects from whom we garner inspiration is the Catalan Antoni Gaudi. We are particularly impressed by the organic nature of his structures. In Gaudi, we sense a synthesis of craftsmanship and technology. This magical tension is perhaps best introduced by the words of the French architectural theorist Eugene Viollet-le-Duc, a voice of the Structural Rationalists and undoubtedly an early influence on Gaudi. "In architecture, there are two necessary ways of being true. It must be true according to the programme and true according to the methods of construction. To be true according to the programme is to fulfil exactly and simply the conditions imposed by need; to be true according to the methods of construction, is to employ the materials according to their qualities and properties.. .purely artistic questions of symmetry and GLOM:Information Agglomerates AfT herews h, k Fig.3-3: Stills from The Millenium Projectand PerspectaView. These projects by Earl Rennison and Lisa Strausfeld of Perspecta exemplify the "overview-and-zoom" approach first presented in Rennison's Galaxy of News project. The user flies through the data set, thereby increasing the specificity of available information.As the user is increasingly separated from the initial vantage point this approach may introduce complications with disorientation. apparent form are only secondary conditions in the presence of our dominant principles (Eugene Viollet-le-Duc, Entretiens sur l'architecture, 186372) Powerful sentiments, but perhaps only the first half of the equation. As an end in itselfViollet-le-Duc's approach is lacking; the assumption of the superfluity of the "artistic questions" is a regrettable notion. We are reminded of software engineers who pronounce a project done when the underlying algorithms are stabilized and the source code has been debugged. Time for the designers to "make it look good". Masterfully executed, this process of "making it look good" is as critical to the success of a project as the underlying engineering. We are inspired by Gaudi's Casa Mil&, a daringly unique building that exhibits a highly organic aesthetic resting upon a-for its time-technologically advanced armature. The peaks and chimneys of the Casa Mil&rise out of the rational grid of Barcelona as the crown of an undulating cliff face, a cyclopean gesture whose overwhelming sense of weight seems to GLOM:InformationAgglomerates contradict its free and delicate organization about three irregularly shaped courts. This contradiction finds its parallel in the perverse suppression of the building's steel structure behind massive stone facing. As in the Park Guell, the articulation of the structure has been sacrificed to the evocation of some primal force. Nothing could have been further from Viollet-le-Duc, for neither the fabric nor its mode of assembly was explicitly rendered. (Frampton, 1992) The suppression of the engineering substructure may have been "perverse", but it was calculated and executed to great and lasting effect. What follows is a collection of projects, individuals and fields that we consider to be inspirational or related to our current work. 3.1 Sandia Labs Chuck Meyers and his team at the Sandia Labs in New Mexico are working on an intriguing project in virtual reality information visualization. Meyers and his team have taken the phrase "information landscape" to heart, creating virtual landscapes of information. Upon first glance, the "Navigating Science" interface looks like a tropical island as seen from an airplane approaching from above. Mountains and valleys colored green and fading to a clay-like brown color at the lower altitudes, rise up from sand-colored shores out of a blue ocean that stretches to infinity. The stated goal of the project is "to develop a method of exploring and analyzing scientific literature using virtual reality. This method will allow users to explore a three dimensional terrain of scientific papers which are spatially graphed by their similarity." (Fig. 3-4) In their schema, individual papers are represented either as colored dots or spheres. This geometry is given x, y and z coordinates based on its similarity to other papers in the system. These coordinates have meaning only in the localized sense, i.e. in juxtaposition to other papers in the same vicinity. In the global sense, this implies that the coordinates have no absolute meaning: all relationships are relative to a given data set. "Mountains" occur where there is a density of similarity: individual papers are displaced in the positive vertical axis (z in this instance). GLOM:Information Agglomerates Fig.3-4: Navigating Science. Chuck Meyers and his team at Sandia Labs created this information landscape to represent a large-scale collection of scientific papers. The Navigating Science project is still in the prototype phase. At this point it generates its visualizations from the manipulation of approximately 50,000 individual records: bibliographical documents provided by the Institute for Scientific Information. The project's stated goal is to increase this database to 3,000,000 records. Meyers states that the Navigating Science front-end visualization is fully integrated with the underlying database engine. This allows the user to formulate custom queries to manipulate the visualization. For example, users could choose to consider only a subset of the larger body of documents, records that fulfil a given search criterion. The system affords spatial and temporal navigation. As such, the user can "fly" about and through a particular snapshot of the environment, or dynamically deform the environment by filtering the database according to the date associated with individual records. In a sense, this suggests that the system is capable of animated queries, for the temporal filter can be considered to be nothing more than a simple query by field values. Meyers suggests that their "technology provides an entirely new Data Mining technique. Exploration of new and existing data sets can be done in an easy and intuitive manner. This allows the user to visually "pick up" connections and relationships in the data that were buried within the flat, featureless, data archives of the past." It is their belief that presenting a GLOM:Information Agglomerates body of unfamiliar information in the guise of the familiar will aid the user in their attempts to extract salient information from that database. Certainly, there are common themes between our work and the Navigating Science initiative. For example, we are also interested in creating visualizations that leverage off the user's sense of the familiar. We are used to navigating terrain in the real world, so logic suggests that we would have an easy time navigating a representation of the real world, hence the attempt to create virtual islands, mountains and valleys. In our own experience, we have discovered several areas of ambiguity and potential difficulty with this approach. The simple distillation of the complications involved in the representational approach is that under current technology, any reproduction of real world objects in the digital realm can only be mere shadows of their physical counterparts. There is just not enough computational horsepower to generate a simulation of reality that is detailed enough even to lull the user into a suspension of disbelief. As a result, the information architect is doomed to failure: it is impossible to flesh out all the details. It is our belief that given this limitation an appropriate course of action involves the abstraction of the user's sense of expectation. It is not prudent to attempt the simulation of a real world object, but it does make sense to extract the essence of that object and implement those characteristics in a unique, digital manifestation. For example, a flower petal in the real world bruises if you handle it with too much force. This bruising results in discoloration and a deterioration of certain structural characteristics: the petal droops. A successful migration of this phenomenon to the digital realm would involve no petal, only the behavioral characteristics. Using this approach, designers do not set themselves up to disappoint the user. No one will expect to see that flower bloom because it wont look like a flower and yet when they "touch" the virtual object and it bruises they will be pleasantly surprised, greeted by the familiar in an unfamiliar domain. The necessary abstraction of the real in information architecture is what prevents us from accepting the notion of an information landscape as the ultimate solution to the problem of data mining. This is why we balk at the colors and initial appearance of the Navigating Science environment. If the universe of scientific publication is to be represented as island with hills and valleys, why aren't there any waterfalls and rivers? Why aren't GLOM:Information Agglomerates inxight44 Fig.3-5: Two examples of shape-based information design. On the left, InXight's "Perspective Wall". On the right, Interval Corporation's Strickland/Gould "CubeOctahedron". Both systems use geometric juxtaposition to their advantage, establishing relationships between data through the position of categories and other organizing principles on the various surfaces of foundation geometry. there any clouds? No animals? No people? The analogy quickly degenerates. Our answer is an increased level of abstraction in tandem with nonspecific, i.e. displaced, mappings of familiar traits and characteristics. 3.2 Intel Research Mr. John David Miller working for Intel in their Portland Oregon Architecture Laboratory has been developing a visualization project known as "Grand Canyon". The goal of this project is to visualize approximately forty year's worth of personal information in relation to the same period's worth of world news. In essence, the Grand Canyon project has the potential to provide the user with a contextualized history of their own life or of the life of someone they care about or are interested in. In its current manifestation, the Grand Canyon project juxtaposes news stories from LIFE magazine with a compilation of the major events in the designer's life. Grand Canyon organizes the information it comprises on a series of gridded planes within the three-dimensional environment. The planes are semitransparent and are mapped with the grid with a horizontal frequency of approximately 12 divisions and a vertical frequency of 10 on edge. Floating above the individual planes are rectangular planes texturemapped with photographs specific to the time slice represented by a given GLOM:Information Agglomerates plane. Colored text also floats above a given plane with the headlines related to the pictures. In addition, pictures from the individual's life interweave among the other elements along with large text indicating the year that all this information ties into. As the gridded planes overlap, the user begins to get a sense of their transparency. Stacks of four or more planes viewed head-on give the impression of a cumulative opacity as the combined effect on the light cast into the scene is calculated. The planes are organized in a periodic manner, avoiding the problems of limited visibility inherent in a straight ordering. Thus, the foremost plane appears offset to the left of the user's viewpoint, the next closest plane to the right etc. to infinity. The planes are offset just enough to allow for a small amount of overlap which heightens the transparency effect, especially since the body of the geometry is set against an otherwise featureless black void. Early prototypes we observed also incorporated sound samples from the specific news stories or life events. The user navigates in the global sense by simply flying back and forth through the time line. During this navigation, the user experiences aural shifts of focus as certain items come into view and their associated sound is played. The effect is similar to walking down a hallway populated by a series of loudspeakers positioned at regular intervals. If the user becomes interested in a particular photo or body of text they can simply click on that item and the camera is brought to bear. The point of view shifts from the central browsing lie of sight and zooms in on a particular asset. When the user wishes to return to a position that allows for general browsing, the camera returns smoothly and proceeds with its progress along the central line. We found in the Grand Canyon project an interesting contrast to our own Fig.3-6: Grand Canyon by John David Miller. This project presents the user with 3-D view of an interactive timeline that spans forty years of world events juxtaposed with the happenings in an individual's life. GLOM:Information Agglomerates P1 W- 0- Fig.3-7: Clockwise from above: InXight's "Table Lens", two views of Spotfire's "Spotfire Pro 3" tool. These programs could be categorized as interactive spreadsheets. Tight integration between the underlying data sets and the visual/symbolic representation of that data enables the user to view up to 100 times the information they might using traditional spreadsheet representations. Spotfire embodies the Schneiderman mantra of "Overview first, zoom and filter, then details-on-demand". efforts with Glom representations. Our work shares several of the challenges and limitations faced by Mr. Miller in the realization of his work. For example, both projects push the visual and computational limits for the sheer mass of text and geometry that can be displayed at any given time. Grand Canyon runs on a consumer-grade PC system powered by a Pentium Pro processor. The hardware configuration we use in the implementation of current GLOM systems is similar. Our working platform is a 300MHz Pentium II that includes identical 3D acceleration hardware to that employed by Miller. We take away at least two design lessons from the Grand Canyon project's use of gridded planes. The planes are extremely useful for giving the project a sense of place. This is a good thing. However, the form of the planes contributes little to the quality of the underlying data they help to organize. A ruler is striped with measurements that allow its owner to impose a standardized system of measure on an arbitrary object. Similarly, the planes in the Grand Canyon project serve to slice up the individual information assets of the system into uniform temporal divisions. In both cases the measuring device is a layer on top of the GLOM:Information Agglomerates underlying information; alone it demonstrates its autonomy from this data. If we were to remove all the contents of the environment other than the dividing planes, we would be left with only the measuring device. An alternative might be to integrate the measurement with the content itself. If the individual assets could somehow suggest their position along the axis they are associated with without the assistance of additional geometry, the user could avoid any unnecessary distraction. In one scenario, hue could be used to indicate magnitude as in a thermometer that progresses from blue to red as the temperature rises. In conjunction with an inobtrusive visual reminder, perhaps a line, to indicate the individual axes this approach might simplify the scene. This simplification could lead to fewer problems with occlusion and general crowding in a scene that incorporates more fully articulated metric geometry like the gridded planes. 3.3 Chernoff Faces Certainly, the most anthropomorphic of the related works considered here are the Chernoff faces. The supposition that Chernoff makes in presenting his faces as a viable method of representing points in k-dimensional space graphically is that of all objects in our world we are perhaps most familiar with the human face. Even in the earliest stages of development as a baby, humans start to read other faces as a means to beginning to interact with something beyond or outside of themselves. Before we fully develop our facility of speech, we are able to discern a mother's smile from her frown. As such, Chernoff maps the various attributes of his simplistic faces to dimensions of the given data set. A sad face could mean that whatever data we are tracking has taken a turn for the worse. A smiling, welcoming visage denotes a favorable turn of events. If a given data set has multiple dimensions, then different aspects of the face can be individually manipulated to reflect trends in these further dimensions. A single eyebrow can be tilted, an eye closed to a given degree or a nose pinched to indicate disdain. Thus rendered, individual faces can be plotted in a simple x/y plot and considered both as a gestalt and as an individual in the crowd of faces. GLOM:Information Agglomerates I__ AM".- nazards nOn-USa eCO nOr fashion hr arts GLOM:InformationAgglomerates Fig.3-8: Five variations of an approach characterized by nodes and explicitly rendered links. Clockwise from the top left: Apple's "HotSauce" meta-content format web browser; InXight's "Hyperbolic Tree" VizControl; Plumb Design's "Visual Thesaurus"; Earl Rennison's "Galaxy of News"; and Semio's "SemioMap". These techniques in either 2 or 3-dimensional space, allow the user to click on specific nodes to burrow deeper along a particular vector of interest. While integrally functional, the shapes formed by the hulls of these interfaces offer limited additional information. In general, once the user has "mined" into one of these interfaces they are offered no reminder/reference to the shape of the overall body of information. Chernoffs idea is unique among proposals we Ey"spc" Headeocenmot have come across in our survey of the field of Eyebrow slope information representation. In a way, Chernoffs Eye emrbot ideas speak to the spirit of what we are trying to Eyji accomplish in the production of GLOM represenPupflstce tations. In building a GLOM we hope to incorpoNoselenof Nos wl rate the essence of familiar behavioral Mouth $M tb opermnss characteristics from a variety of objects that can MM&~vWth be found in the physical world. It is our hope that Fig.3-9: A Chernoff face. This technique the use of these behaviors will both facilitate the was conceived to represent k-dimensional user's ability to get acquainted with the navigation data sets. The human face is an extremely and understanding of a given GLOM system as familiar construct. As such, we are able to well as encourage the user to develop a sense of read minute variations in nuance with ease. expectation and familiarity with the unique GLOM object. It is in this last point that our approach differs definitively from Chernoffs proposals. Using a face to signify the performance of a given data point in a data set may allow the user to identify trends quickly, comparing one face to another within the context of a given plot. However, between plots there is no individuality of representation. This lack of uniqueness, in our opinion, limits the ability of the user to retain an impression of a given data set. This limitation is further exaggerated by the uniformity of the technique used to render a particular Chernoff face. In every example of a Chernoff face plot that we have encountered, the faces in an individual plot were rendered using an identical technique. Line thickness, color, and character was the same in every face. The plots give the impression of a random series of stills taken from a single animation sequence that have been subsequently scattered on the floor of the editing room. Given the simplicity of the rendering style, we also found it difficult to read the expressions on the faces. Again, the deliberate lack of differentiation in the rendering style got in the way. Perhaps this limitation is overcome through repeated exposure, but it seemed uncertain. GLOM:InformationAgglomerates 4 First Prototypes 4.1 Gradus 4.1.1 Motivation and Scenario Is there a way to make a meaningful shape from a collection of the individual words of the English language? What would that shape look like? Why would this approach be preferable to a traditional representation, i.e. a printed dictionary?These were among the questions we asked when we set out to visualize the English language as a single entity. The first assumption we made in the search for a meaningful way to represent the English language as an expressive form was that our daily interaction with three-dimensional objects would give us leverage in establishing meaning through familiarity. We set out to create an object that wouldthrough regular observation-begin to afford the same level of information about its state as do objects we interact with through the course of a normal day. For example, as you walk out your front door in the morning undoubtedly you encounter a shrub or a tree that is part of the landscaping of your environs. In that you consciously or unconsciously take a mental note of the appearance of that plant, you are building up a familiarity with it. This is a visceral familiarity. The plant becomes an ambient source of information. On the odd occasion that you do pause for a moment to take a more considered impression of the plant, the months of cursory examination come into play. Suddenly, you are able to discern the season GLOM:Information Agglomerates 4A I -d bt)Ok Fig.4-1: A sequence of stills from the Gradus project. From the top left turning clockwise: overview of the form indicating historical trends in the English language; zooming into the structure heading toward selected keyword; macroscopic view, user extracts an illustration and definition of the requested work; thesaurus mode, synonyms surround the initial word according to relative similarity. I, k, n by the color of the leaves or lack thereof. Droplets falling from branches can signal a recent bout of precipitation. Cracked bark or fungal growth signifies the presence of disease in the area that may extend beyond this single organism. As we began to think about how we might structure an object of this sort, our instincts suggested that this level of expression could only come from a form that exhibited a significant level of cohesion. This meant the data points would need to be packed. Plants grow or wither; if their forms were not cohesive to begin with, these transformations would be less apparent. Because we have seen a plant in its healthy state, we are able to compare and contrast its overall form to the shape we find it in when it is desperately in need of water or light. The initial step in the process of developing the formal attributes of the object was the identification of salient ways to categorize our data (individual words). The intent of the project was to propose a system that would function primarily as a reference tool. Resultantly, the dimensions we chose were tailored both to enable the retrieval of a particular word and to facilitate the recognition of broad trends throughout the base of data. These trends, we decided, would be most salient if they were intrin- GLOM:Information Agglomerates sically related to the history of the development of the English language. To get a sense of that history, we turned as a reference to the Oxford English Dictionary (OED). (Fowler, 1990) Presumably, we are all used to locating words in a dictionary by wading through the alphabetic ordering it presents us. Based largely on this familiarity and the resultant efficiency this familiarity affords, we chose alphabetic organization as our first axis of description. The remaining axes of description, or "descriptors", were chosen for their perceived ability to contribute to the overall expressiveness of the resultant form: word familiarity and temporal etymology. Determined on a word by word basis, the most likely methodology to be used in the measurement of the familiarity of a particular word would be based on the number of times that word appeared in a statistically significant corpus. (Zipf, 1945) Temporal etymology would be determined by the first recorded use of a word as provided by the definitive etymological dictionary: the OED. Once plotted along the axes, the polygonal representations of the words would be packed along their vectors to the origin. Additional expressiveness would be added to the resultant form through the assignment of color to a particular word based on the national origin of that word: for instance, words with a Germanic root would share a common hue. The interface to this reference tool would allow the user to extract information specific to a particular word such as its definition, etymology or illustration (if appropriate). As well, one could use Gradus to browse synonyms and antonyms, replicating the essential functionality of a thesaurus. The form would be freely navigable. This would allow the user to browse a small area that would represent, for example, "words beginning with the letter g that came into the language during the Elizabethan period that are relatively unfamiliar to the modern English speaker." The emergent form would be tornado-like: relatively few words at the tail of the object, i.e. the beginning of the language, and a burgeoning of words following the industrial revolution through the twentieth century. Even a quick glance at the shape of the object will give the user information about the history of the English language. If one were to explore the area around the bottom of the shape, they would discover words like eat, GLOM:Information Agglomerates Fig.4-2: In the bottom left diagram we see a metaball model. Metaballs have several attractive characteristics that make them ideal candidates for the role of Glommit in an organic GLOM. Metaballs are implicit surfaces, esentially a surface defined by a contour in a continuous field of potentials. As such, they flow smoothly into each other, giving an illusion of physical interdepence not unlike the phonmenon of two droplets of water coming into contact and connecting to become a single volume. To the left are two screenshots of early 2-D Java implementations of metaball glommits. drink, speak, work, house, door and man. These are all words with Ger- manic roots, attributed to the Anglo-Saxons who settled in Britain from the fifth century and eventually established several kingdoms together corresponding roughly to present-day England. As the user moved up the shape, it would gradually swell. The predominant hue of the form would shift accordingly, as the Danish and other Scandinavian invaders of the ninth and tenth centuries-collectively called the Vikings-demonstrated their influence on the language. On through the Norman Conquest beginning in 1066. "The arrival of the French-speaking Normans as a ruling nobility brought a transforming Romance influence on the language. The Romance languages (chiefly French, Italian, Spanish, Portuguese, and Romanian) have their roots in the spoken or vulgarLatin that continued in use until about AD 600. For two hundred years after the Norman Con- GLOM:Information Agglomerates quest, French (in its regional Norman form) was the language of the aristocracy, the lawcourts, and the Church hierarchy in England.. .During these years many French words were adopted into English." (Fowler, 1990) Beginning at the end of the Middle Ages and through the Renaissance, the culture and the history of the ancient Greek and Roman worlds were rediscovered and popularized. Through the fifteenth to the seventeenth centuries "scholarship flourished, and the language used by scholars and writers was Latin. During the Renaissance words such as arena, dexterity, excision, genius, habitual,malignant,specimen, and stimulus came into use in English." (Fowler, 1990) At this point, the structure of Gradus would swell dramatically only to taper off briefly during the time of the Industrial Revolution. The topmost portion of the structure would expand beyond even the limits of the Renaissance levels. Multicolored words from around the world entered the language, spurred on by the electronic revolution and the trend towards Internationalism we have experienced during the twentieth century. Herein lies one of the major advantages of this approach over traditional means: unlike printed dictionaries, Gradus offers information about its content-in this case the history of the English language-through its form. Gradus, as an expressive, sculptural representation of the English language offers an efficient way to develop an understanding of the nature and the history of specific words and the language as a whole. 4.1.2 Implementation Gradus was conceptualized on paper and in 3D modeling packages on the Macintosh such as Strata Studio Pro and Pixel Putty Pro. Test QuickTime movies were rendered out to validate or refute ideas presented as sketches on paper or in Adobe Photoshop. The final piece was created using Alias/ Wavefront Power Animator software and Macromedia Director. 4.1.3 Design Lessons Gradus has enjoyed a protracted period of popularity starting from its introduction in December 1995. Perhaps the most concrete manifestation of this popularity was its acceptance as a Design Sketch in the ACM's 1997 Siggraph Conference. Gradus was our first significant proposal for a new approach to thinking about and organic three-dimensional represen- GLOM:Information Agglomerates tation of multi-variate data sets. Nonetheless, it has also served as a constant reminder of the importance of implementing a proof-of-concept prototype. In addition, the discourse between those we have shown the project and us has helped us recognize the different characteristics of a proof-of-concept prototype can be expected to have by both designers and engineers. Gradus is a conceptual piece. At the time it was conceived, we did not have the resources or the skill-set required to implement Gradus as a real-time, interactive three-dimensional environment. In addition, we did not have access to the necessary data to complete the project. The Oxford English Dictionary, while online, is not available in the public domain. Corpora of headwords with and without definitions are readily available, as are various thesauri. However, we were not able to locate a source of etymological information as robust as that offered by the OED. GLOM:Information Agglomerates 4.2 Munsell Fig.4-3: The Munsell Project. With this GLOM representation our intention was to re-think the traditional 2-dimensional color picker. A typical example can be found at the bottom right. This picker comes from the latest version of Adobe's Photoshop product, considered one of the most successful tools in its class. Our idea was to utilize the Munsell system of color organization-seen on the right half of the three images straddling this text-in conjunction with a 3-dimensional GLOM representation of the RGB cube. In these stills, a random sample of two hundred colors are selected and plotted according to their Se - RGB coordinates. The true plot is shown in the top left image. The remaining two images demonstrate the advantage of glomming techniques in emphasizing the underlying trends in a data set. The pronounced "tail" indicates a tendancy to the black corner of the cube. This trend is not readily apparant in the true plot. 4.3 StockGLOM 4.3.1 Motivation and Scenario Part of my responsibilities as an Interval Fellow for the academic year 1997-98 involved an extended working visit to Interval Corporation in Palo Alto California. While at the company, I was expected to complete a project appropriate to the duration of my tenure. I was also afforded the GLOM:Information Agglomerates privilege of being encouraged to explore the various research initiatives and other projects undertaken by the various staff members at Interval. My stay was to last a total of three weeks. After an initial week of getting my bearings and familiarizing myself with many of the projects, I settled on my own project: a GLOM visualization of a mutual fund. Late in 1997, Andrew Lippman proposed to Jon Orwant the idea of tracking the progress of a chimera mutual fund comprised of the publicly traded sponsor companies of the MIT Media Laboratory. Orwant programmed a PERL server that would parse timely market data from pages Yahoo! served up for public access. I began to work on a Java applet that would visualize this market data. 4.3.2 Implementation The StockGLOM project had two driving directives: 1. Reconsider the shape of the atomic unit in the visualization, 2. Develop the "seek and approach" behavioral model of the individual data units. Mid-fall 1997 I had been examining the book "Algorithms in C" by Robert Sedgewick. Sedgewick's chapter on Closest-Point Problems makes brief mention of Fig.4-4: Scott Snibbe's Bubble Harp.we first encountered this project during our stay at Interval Research during the Spring of 1998. The Bubbleharp, a beautifully conceived interactive Voronoi diagram, served as an inspiration for the StockGLOM project. GLOM:Information Agglomerates theVoronoi diagram (also called the Dirichlet tessellation) and its dual the Delaunay triangulation. Sedgewick defines the Voronoi diagram thusly: "The set of all points closer to a given point in a point set than to all other points in the set is an interesting geometric structure called the Voronoi polygon for the point.The union of all the Voronoi polygons for a point set is called its Voronoi diagram. This is the ultimate in closest-point computations..." (Sedgewick, Algorithms in C) I shelved implementation for a later date. For the final problem set in John Maeda's fall 1997 MAS962 "Digital Typography" class, Tom White presented a solution which used an implementation of the Voronoi diagram to visually distribute packets of communication from a reflector server. This implementation, while compelling, appeared to run at a frame-rate unacceptable for smooth animation. Then, at the beginning of my visit to Interval I saw a demonstration of the Bubble Harp project by Scott Snibbe and Golan Levin. Implemented on a Pentium-class PC, The Bubble Harp allows the user to interactively add and subtract points from a point set which is continually interpreted into a Voronoi diagram. Users can drag given Voronoi polygons through the two-dimensional plane in real-time to see the effects this movement has on the overall diagram. In line with Snibbe's long-standing interest in abstract animation, the system allows the user to assign animation characteristics to the individual polygons. We were attracted to the Voronoi diagram as a means of dividing the design plane for at least two reasons. Firstly, in that this kind of triangulation appears naturally-in, for example, the natural separation of growing trees, the drying of mud, and varied rock formations-it has an easy, organic feel to it. Secondly, dividing a plane in this manner would allow us to pack individual data units in a dynamic and efficient manner. In the implementation of earlier GLOMS we had been limited to packing individual pieces of geometry according to a grid or, alternately, we had impacted the geometry which led to issues with occlusion and legibility. However, as attractive as it is, the Voronoi diagram has certain characteristics that proved undesirable for the project at hand. Given a relatively sparse point set, the resultant Voronoi polygons are rather large. Even as GLOM:Information Agglomerates the number of points increases, the various polygons could not be described as uniform with respect to comparative size or shape. The individual sponsor companies, while unique, can be considered to be similar components-at least in the context of a mutual fund-and we strove to emphasize this similarity in the representation. Another apparent limitation of the Voronoi diagram was the existence of infinite rays at the edge of the plane upon which the points rested. These rays would serve to further differentiate the individual companies in an undesirable manner. Fig.4-5: These images demonstrate the functionality of the StockGLOM representation. Individual companies in a mutual fund are represented as living cells in the system. The user can access information about a particular company by mousing over its cell. The solution to circumventing these perceived limitations came through the realization that a Voronoi diagram could be interpreted as a collection of simple conic intersections. The Voronoi polygons could be identified through the intersections of a series of uniformly spreading cones of infinite height. These cones lie with their vertical axis orthogonal to the point plane and with their tip concurrent with it. The tip of these cones plays the role of the individual point in a given point set. By limiting the spread or maximum diameter of the base of the cone we produced what were in GLOM:Information Agglomerates effect clippedVoronoi diagrams. The resulting effect is more akin to intersection of bubbles or small cells. Several standard algorithms were considered for the solution to this problem. Of these, the divide-and-conquer approach to solving the Closest Pair Problem (Bentley-Shamos 1976; Bentley 1980) and the sweeping plane solution proposed by Steven Fortune seemed to enjoy the most popularity. Due to time constraints, we implemented a naive algorithm based purely on geometric intersections. The intention was to replace the algorithm if it could not produce animations of up to thirty frames a second with the expected data set of approximately fifty points. In the end our algorithm produced a frame rate of approximately 15fps on a Macintosh under MRJ 2.0 and over 30fps on a Pentium 200 class PC under IE 4.x. The StockGLOM project contained several useful lessons. The primary lesson from all of our efforts to instill lifelike motion and dynamics in GLOM systems is that there is no such thing as a halfway commitment. As soon as you start down this path, you must deliver on all inherent expectations. For example, in the StockGLOM system individual glommits appear as circles. When these circles intersect they act as though they were two bubbles: they share a common border which is the perpendicular bisector of the line connecting their two midpoints. Many users have wondered about the meaning of two of these glommits colliding. Does this mean the two companies have merged?Was there a hostile takeover. In the current system there is no mapping for this action. The bottom line is, organic representations afford many "channels" that can be mapped.Your user will not forgive you if in your design you neglect to map these channels. GLOM:Information Agglomerates 36 4.4 Chicago Tribune Fig.4-6: The Chicago Tribune Project.Media assests for a particular story or feature are represented as appropriate icons: text pieces are marked with a letter, photographs a thumbnail icon etc. This is a one-dimensional GLOM where the vertical axis represents an increasing level of relevance to a particular theme (indicated on the right). Individual layers of the GLOM represent integer steps on this scale of similarity. The top image is a still from the transitional phase as the GLOM reconfigures itself according to a user's request for a new thematic organization. Glommits are abstracted to squares for efficiency. The bottom pane shows the visual weighting tool developed by Chloe Chao for this project. Individual assets are grouped according to theme-note the starlike cluster-and ranked numerically according to a theme by rough placement on the graduated scale seen at the bottom right of the image. GLOM:Information Agglomerates 5 BLITZ 5.1 Introduction How is it that a Java-based arcade game came to comprise a significant portion of this thesis? My passion is information visualization. As such, for the past several years I have found myself trying to figure out new ways to begin thinking about representing data in a compelling and efficient manner. When I first began to think about how I might structure my thesis my instinct was to first locate a set of data to work with. This body of data would ideally satisfy several constraints. Firstly, it would be large. Increasingly, it has become apparent that my current approach to visualization is best suited to voluminous amounts of data. At this juncture, a fundamental quality of GLOMS is the deliberate distortion of the data to emphasize its peculiarities. This approach seems to be best supported by overwhelming amounts of raw data. As in any amplification, if the underlying signal is thin the product of that amplification is rarely palatable. A second quality the ideal database would demonstrate would be variety. A uniform or predictable stream of data beyond being uninteresting not would be challenging. The ability of a GLOM system to emphasize or deemphasize the nuances of a database factors heavily into any assessment of the success of that implementation. Next, the data would come from a source that is constantly generating new data-points. One aspect of the GLOM:Information Agglomerates "information anxiety" that is common in contemporary society is the sense of feeling overwhelmed by the sheer volume and flow of the information we perceive we are required to maintain a mastery of.Which newspapers should I read? Which magazines? If I don't watch this or that television show will I somehow be out of the loop? Ultimately one either goes crazy and retreats entirely or perhaps they fall back into a comfort zone, considering only sources of information which are known quantities. Both approaches are censorious and ultimately limit the reader in their ability to consider an issue from a balanced position. Unfortunately, many contemporary online news services take a similar approach in their attempts to customize their product for the reader. Users are polled for their particular interests and the information stream is suitably reduced to meet those specifications. For example, a user may express an interest in local news, weather and computers. In this way a rich and varied news stream is reduced to a narrowcast which has the potential to reinforce previously held views and opinions. The editorial voice is compromised in this process, and an appreciation for the larger body of available information is scuttled. If a GLOM can maintain a sense of the whole while letting the user reach any level of specificity there is hope for both the Fig.5-1: The web-based, Java game BLITZ as it appears online. Above, a screenshot from "Combat" the original game for the Atari 2600 system that inspired our work. BLITZ is conceived as generative source of data for GLOM systems currently under development. Data from every game play is collected and recorded in our databases. GLOM:Information Agglomerates editorial voice and the serendipitous discovery that architectural contextssuch as libraries-facilitate with such seeming ease. Given these constraints, I set out to locate a suitable source of data. My initial instinct was to tie into a live feed of stock market information. Securities information is timely, voluminous and relevant. Many initiatives have been undertaken to visualize this type of information in new and increasingly efficient ways. These parallel efforts would allow me to contextualize and compare my results. Aspects of stock market data that are less desirable include the costliness of the most current and accurate information. Also, market data that is freely available, i.e. from public sources such as www.stockmaster.com orYahoo! would involve extra, irrelevant effort to parse and the life-span of any such effort would be contingent on the arbitrary periodicity of site revision for a given source. Other data sets I considered included the ever-changing catalogue of Nike shoes designs. Nike, as a sponsor company, sent two representatives in early spring 1997 to inspect the work of the members of the Aesthetics and Computation group. At that time I demonstrated my work which then included Gradus and the Munsell project. These two individuals, Hanmi Hubbard and Keith Burgess were members of Nike's Digital Media Group. In an effort to foster a relationship between ACG and Nike, Hub- Fig.5-2: The set of tiled graphics used in the game BLITZ to represent each level and the bad guys who inhabit them. Below are samples of additional sets of graphics for higher levels developed by urop Jocelyn Lin. GLOM:Information Agglomerates bard and Burgess sent ACG a CD-ROM with over 600MB of shoe model data.This data included compressed photographs of every new shoe in the spring 1997 product line. This promising initiative was cut short when the process of information exchange was frozen: Nike postponed a planned trip to the Portland campus until an unspecified future date. Electronic Data Systems Corporation-also a sponsor of the Media Labproposed yet another source of data for potential use in a GLOM system. As a company with a primary focus on the management of computer information systems, EDS took a particular interest in the possibilities inherent in GLOM representations. One of EDS' clients at the time was Blue Shield/Blue Cross. Our contact at EDS, Mr. JimYoung proposed that we might work in conjunction with Blue Shield to visualize one of their patient claims databases. Initial contact was made during the Spring 1997 Sponsor open house, but subsequent progress was put on hold as Blue Shield and EDS' local field office reconsidered the proposal through the summer of 1997. A final source of data that was considered, was the web navigation database compiled by Alan Wexelblat and his associates in the Intelligent Agents group at the MIT Media Lab. Wexelblat's project "Footprints" is an initiative to track people's paths through web sites. In Wexelblat's words: Footprints is a system to help people browsing the web. You use our software and we give you additional information, based on the history of what people have done in the past. Ultimately, this can lead to the creation of communities of people with similar interests browsing the same information for similar purposes. This is not about selecting the "best" or "hot" pages. We assume you know where you want to go, but would benefit from knowing where people who came before you have gone. We try to aug- ment what you're doing, without interfering. We try to help by providing promising directions to go and help understanding the context of where you are. (Wexelblat, 1998) GLOM:Information Agglomerates My involvement in this project would have centered on thinking about representing the path that people chose through various web sites. This data interested me on several levels. Firstly, although unequivocally objective on the surface-there is no contesting that person x from IP number y visited so-and-so pages at a particular time-the decision process behind that particular path is anything but objective. The fact that semi-anonymous people's progress was being tracked through a given web site and that inadvertently these people were helping to establish a sense of place and history in a virtual space was particularly compelling to me. As it turned out, we were able to incorporate many of these desirable traits in the final candidate source of information: the online game BLITZ. Late in July 1997 I came to the point where I felt it necessary to make a final decision with respect to where the data that I would visualize was going to come from. At that time John Maeda suggested that he felt strongly that whatever the source turned out to be, that it was of paramount importance that the source be entirely of my conception and, as much as possible, under my control. At the time it seemed unclear to me why it should be considered so important that the data source be so much under my control. However, subsequent experience has revealed the wisdom of this direction to me; a topic I consider at length in the evaluation portion of this chapter. Given this freedom, I began to consider how to generate data in a manner that would be fun and yet sophisticated enough to satisfy the requirements for an information source as I have outlined above. Since childhood, I have been fascinated by computer games in their myriad manifestations. My earliest experimentation with programming a computer was motivated by the desire to create a game. The first programmable computer I owned was a Commodore 64. My parents agreed to buy this computer for me on the condition that I learn how to touch type. To this end they covered the keys of the keyboard with stickers that obscured the letters imprinted on the key, thus (if I did not peek) I was presented with a completely undistinguished interface to the machine. I did not own a mouse, I am not even certain the Commodore 64 supported a mouse. As a result, I was motivated to learn how to touch type as quickly as possible. To help GLOM:Information Agglomerates Fig.5-3: Two complete level designs for the game BLITZ. The top level "shipped" with the original posting of the game. The bottom level was designed by a player, Noah McNeil. An interview with Noah is presented in Appendix A. myself achieve my goal, I decided to create a game that would facilitate the learning process. In the end I created "Letter War", a simple game where letters and numbers fell from the top of the screen, descending towards helpless "friendly" cities on the terrain at the bottom of the screen. If the letters reached the bottom of the screen, they would inflict damage on the cities and eventually when your cities were completely destroyed the game would end. The player could prevent damage to their cities by typing the falling letter or number before it traveled the length of the screen. It came as no surprise then in the summer of 1997 when I began to wonder if I could write a new game and use it as a source of data for visualization. If I could write a game that was popular, many people would play it. Thus, the resultant database would be large, satisfying the first constraint that had been established concerning the nature of the data. People would play the game at largely unpredictable times and at a frequency I could not anticipate. As such, the incoming data stream would be varied fulfilling the second constraint. The final quality of the ideal source of data is that it constantly generates new information. Again, if the game were to become popular I could satisfy this constraint. GLOM:Information Agglomerates I began to consider issues of implementation. How would the game be delivered? What type of game would it be? What would the game play be like? I felt that rather than develop a game for a particular platform it would be to my advantage to attempt to create a program that could be executed on as many different types of machines as possible. I began to seriously consider using the Java language as a means to this end. Java's portability and increasingly popularity as well as the relative simplicity of implementing network-based applications/applets in this language factored into my decision to favor it as a serious candidate for use in this endeavor. In the sections that follow, I describe the research phase of the development of this game as well as the implementation and reception it received. Inspirational forerunners and early prototypes are considered along with related projects, such as the level editor that was implemented to complement the game that was produced: BLITZ. The mechanics of the game are examined in detail with additional sections that outline problems encountered during the building phase of development. 5.2 Related Work and Meta-Design The decision to use Java in the development of the game portion of this thesis meant that suddenly both the advantages and the limitations this language presented needed to be considered in detail. Java was conceived as a multi-platform product with extended networking capabilities: these characteristics were among those that contributed the most to my decision to use Java. However, Java is an interpreted language. Even with the most up-to-date JIT compilers, Java cannot approach the performance of native binaries in particular areas, among them graphics. 1 Challenged in this way, I decided to look to for inspiration in successful games that had been created under similar constraints. This process is presented in detail in subsequent sections dedicated to particular implementations, i.e. GLOP and BLITZ. Before we considered specific issues related to implementation, a significant amount of thought went into what the game play characteristics of our ideal game would be. Midsummer 1997, we organized a series of dinner discussion sessions where we brought together various groups of dedi- GLOM:Information Agglomerates cated game players to help with the identification of particularly desirable game characteristics. At that time Nintendo had only recently introduced its 64-bit gaming system: the Nintendo 64. For the period between March and June 1997 the members of this impromptu gaming committee had been dedicated fans of a particular cartridge game called "Mario Kart 64". Mario Kart 64 or "Kart" was engaging for several reasons, and by identifying these qualities we hoped to be able to consolidate several or all of them in the game we planned to create. Kart was a legacy title. Originally it had been released as "Super Mario Kart" on Nintendo's 16-bit gaming system the Super Nintendo. Super Mario Kart had enjoyed enormous success on this now outdated system which was encouraging because it suggested that the secret to Kart's success did not hinge on workstation quality full-motion graphics and cinematic sound as much as it did on the essence of the game play. This was a quality that could ostensibly be abstracted and if it proved to be scalable, could be implemented at any level. At heart, Kart is a racing game. One to four players can play simultaneously, racing on a single track. The simple goal is to reach the finish line first in the shortest time possible. The game is complicated by the fact that all players have the ability to affect/impede the progress of the other players. As a result, Kart can become intensely competitive. As you drive around a particular track you are presented with the opportunity to collect any number of "power-ups". These run the gamut from offensive weapons that the player can use to directly affect 1. It is interesting to note that with the introductionof the Java 3D API it appearseven this limitation may become less of a concern. "JavaSoft will release implementations of Java 3D for JavaOS,MacOS, UNIX, andWindows. The initial reference implementations of the Java 3D API will be layered on top of existing lower-level immediate-mode 3D renderingAPI's, specifically OpenGL, Direct3D,and QuickDraw3D.The initial Java 3D implementations will be written mostly in Java but will also take advantage of native methods. We expect the initialJava 3D implementations to perform quite well because they will use existing, accelerated,low-level graphicsAPI's such as Direct3D, OpenGL, and Quickdraw3D." (Deering, 1998) On Windows platforms, Java 2D uses the DirectDrawlibrary,ddraw.dll, if available... If ddraw.dll is not available,Java 2D will use GDI calls, but using DirectDraw will boost performance. GLOM:InformationAgglomerates their compatriots, to performance enhancers that increase a player's ability to move through the pack towards the goal. The best times for a particular track are recorded for posterity and are viewable on demand by any player. The pace of the action is hectic and when a player is competing against other humans of course no two games are alike. In addition, the nature of the tracks is mutable. For instance, a player can rarely expect to find the same power-ups in the same place twice. The nature of the power-ups awarded a particular player is affected by that player's current position and ranking in any given game. Thus, the leader of the pack is usually awarded the more benign of the power-ups, while those at the back of the pack can expect to pick up more powerful awards. In this way, the game attempts to level the playing field in a dynamic manner. From Mario Kart 64 we identified several desirable characteristics of the Fig.5-4: Screenshots from games that served as an example and inspiration for BLITZ. Clockwise from the top left: Karl Hornell's Java classic, "Warp"; Pac Man; Starforce; and Mario Kart 64. GLOM:Information Agglomerates Fig.5-5: Inherent performance limitations in the Java language meant that games orginally developed for legacy systems such as the Apple Ie and original Macintosh were ideal role-models during our design process. From the top left: BOLO (above and below), a classic, mazebased tank game for the Apple II; Oxyd, action puzzle game for the Macintosh with physically-based motion dynamics. game we aimed to create. First and foremost was the ability to play against another person in some manner. In Kart this meant real-time interaction. Although challenging, this type of interaction would not be impossible to implement on a web-based action game, but the nature of this interaction would require careful consideration. (N.B. These individual characteristics are identified here and considered in context in the subsequent sections that are dedicated to the two implementations of the final game: GLOP and BLITZ.)The racing format also was identified as desirable. The fact that Kart was a three-dimensional simulation was not as interesting to us as was the compelling nature of the racing experience: this we hoped to implement in our own game. Kart also served to cement our belief that when it came to crafting an impressive game it was not necessarily the shaded, sorted, clipped polygons-per-second that counted so much as it was an eye for detail. The recoiling motion a player's car performed when struck from the side by another player vehicle or weapon, or the cute but ominous "squeak" the animated driver would emit/emote GLOM:Information Agglomerates when it was near to death. It was unique details like these that we challenged ourselves to create for our own game. Emulating the success of a game like Kart seemed somewhat ambitious considering the technical limitations the Java language presented. As such, we looked for other relevant inspiration in different computational realms. One area that seemed particularly appropriate was the arcade games of the 1980's. As of 1998, there is a trend towards preserving the hardware of yesteryear through complete emulation. As the actual chipsets and their ROM's go the way of the dinosaur, they live on in software emulation on the newer, faster hardware that relentlessly replaces its predecessors. Currently, there is a piece of software available known as MAME: Multi Arcade Machine Emulator. This project is counted among the many nonprofit initiatives that have been springing up around the world that exist only, it seems, to better our communal lot. An incredible initiative, the MAME project 2 to date supports emulation of no fewer than 500 discreet games. These games were written to run on dedicated hardware such as the Motorola 68000 chip (Motorola's first 16-bit 2MIP chip introduced in 1979). For certain tasks, an interpreted language like Java running on "older" (i.e. Pentium 90 class) hardware exhibits performance characteristics similar to these legacy chips. This characteristic in conjunction with the fact that these early games are justifiably approaching archetypal significance in their field reinforced the importance of considering these games. Through MAME we were able once again to play many of the games we grew up on in an attempt to evaluate their relevance to the game we were beginning to write. 2.3 MAME is strictly a no profit project.Its main purpose is to be a reference to the inner workings of the emulated arcade machines. This is donefor educationalpurposes and to preserve many historicalgames from the oblivion they would sink into when the hardware they run on will stop working. Of course to preserve the games you must also be able to actuallyplay them;you can see that as a nice side effect. It is not our intention to infringe any copyrights orpatents pending on the original games. All of the source code is either our own orfreely available.To work, the emulator requires ROM's of the originalarcade machines, which must be provided by the user.No portion of the code of the originalROM's is included in the executable. (Buffoni, 1998) GLOM:InformationAgglomerates In the end, at least three games stood out from the crowd: Pac Man, Starforce and Xevious. Pac Man was most interesting not for the nuances of its game play but for the font it employed. Although there were many different typefaces developed for the 68000-class gaming machines, none proved as popular or as prevalent as the font used in the classic Pac Man game and its relatives. To our knowledge these typefaces were never collected or distributed by a central foundry, rather they were developed piecemeal through successive generations of games. As such, the Pac Man font cannot be presented as the standard typeface as much as it can be considered a fine example of its category. We felt that using this particular typeface would accomplish at least two goals. Firstly, the Pac Man face would be a welcome relief from the fonts that are usually used by Java programmers such as Arial/Helvetica and Times Roman. Programmers default to these fonts because they are readily available and require no additional coding. Although in their conception fine typefaces, beginning with the Macintosh in 1984 -which gave the world its first widely-available WYSIWYG interface-fonts like Helvetica and Times have suffered the double abuse of misuse and overuse. Implementing the Pac Man font would distance us from that predictability while also paying homage to the great games of the 80's. GLOM:Information Agglomerates . . .. . wvl .. 5.3 First Prototypes: GLOP Fig.5-6: Screenshot and preliminary sketches for GLOP, a prototype game for the BLITZ game system. At this point we considered producing a Tetris-like game where players played against each other over network protocols. Above two gems were modelled in 3-D rendering packages on SGI and Macintosh platforms to be used as falling game pieces in GLOP. -1 0 ... ... StI 4 *16 nem-p a GLOM:InformationAgglomerates - 5.4 Implementation 5.4.1 Strategy The name of the game, BLITZ, is misleading when it comes to considering a strategy for advancing through existing levels. This disparity is by design. If the player adopts an approach characterized by a headlong rush against the enemy, cannon blasting their efforts will almost without fail be met with overwhelming force resulting in a failure to complete the mission. In the first level, this approach will more often than not result in total destruction of the player's tank at a point within the range of 0.2-0.4 percent towards the end of the level. During the second phase of deployment, which commenced approximately one week after the initial posting of BLITZ to glom.net, we began collecting information concerning how far players were penetrating the levels they attempted to complete. Interestingly, the blitzkrieg style of attack seems to be the strategy adopted by newcomer players of BLITZ. Statistics tabulated from the master database in the appendices of this document corroborate this phenomenon. At least in the existing levels, the strategy that will get a player the farthest is one of conservative guerilla warfare. Although the player's tank is resilient, and health medical cells to augment a player's health rating are readily available the enemy possesses superior firepower and numbers. Resultantly, the player is well advised to follow a strategy of "hide, seek, destroy". The bunkers and bosses have a sighting range that is somewhat shorter than the range of the player's tank. By remaining just outside this sighting range, a player can pick off the enemy without being fired upon. The trick is in finding the optimal cell from which to commence firing. The level has been designed in such a way as to provide these "staging" cells for the player. What is required is a cool head under fire. As Noah McNeil so eloquently put it in his interview, "My strategy is don't destroy what you don't have to." 3 This approach will prevent unnecessary damage from being inflicted by bunkers or bosses. In addition, in several locations autonomous Baddies are enclosed by retaining walls. Granted, these Baddies can shoot at the player through the green Destructo-Walls that are transparent to their fire. However, if the player keeps their distance they 3.Please refer to Appendix A for a full transcriptof the interview with Noah McNeil. GLOM:InformationAgglomerates will not be sighted and therefore not fired at. In most cases, if the player destroys the retaining wall that hold the Baddies back, they will be engaged under undesirable circumstances where the outcome is heavily weighted in the enemy's favor. Fig.5-7: Level editor designed and programmed by Melissa Hao. This editor is publicly posted and allows any player of BLITZ to design and submit a level for inclusion in future versions of BLITZ. 5.5 Level EditorLevel Graphics BLITZ was not produced in a vacuum. During the IAP 1998 I worked with Undergraduate Research Opportunity (UROP) participants Melissa Hao and Jocelyn C. Lin to extend the effective functionality and extensibility of the game. In terms of the hardware infrastructure, immediately prior to the Christmas holiday I worked with Melissa Hao to lay the groundwork for the entire project. At that time the domain www.glom.net had just been secured and we began hosting it from a Pentium Pro 200 (glum.media.mit.edu). With the assistance of NECSYS (specifically Jon Ferguson and Will Glesnes) and ACG member Richard W DeVaul I installed Red Hat Linux v5.0 on the Pentium and began serving up the BLITZ-related pages. We wanted to be able to easily track access and traffic through the site, so Melissa began work on setting up server side includes (SSI) for our Apache web server. After completing that task she wrote a CGI script to nicely format the hit information for the various pages of the site. At this point the group decided that the Pentium we had GLOM:Information Agglomerates been working on was too valuable a resource to dedicate entirely to the glom.net domain and requested that it be wiped and reclaimed as a communal machine running the Windows NT operating system. The same machine that hosts the acg.media.mit.edu site would subsequently host Glom.net: buzz.media.mit.edu. Buzz is a DEC Alpha running Digital's version of the UNIX operating system. ACG memberTomWhite assisted in the transfer. This turned out to be an advantageous switch in the long run. We gained experience with system administrator duties on the Linux box before it was wiped which gave us a better appreciation of the lower level intricacies of hosting and serving up a web domain. After glom.net was transferred to buzz.media.mit.edu we experienced a marked increase in stability over the Linux system which had been required system shutdowns and reboots for various reasons at a minimum two times a week. We also gained the advantage of being included in the lab-wide file system daily backup which took us a long way towards guaranteeing the integrity of the BLITZ database, the game code and that of the database server and their related HTML pages. After the Christmas break, beginning January 5th Melissa began to learn how to program in Java with the long-term goal of creating a level editor for BLITZ. After producing a suite of entry-level applets, Melissa began her work on the level editor in earnest. We had decided on implementing the level editor in Java for at least two reasons. Firstly, writing an applet meant that we could embed the level editor on a web page which would allow us easy access wherever we were when we sat down to design a level. As well, we hoped that the purported platform-independent characteristics of Java would result in the greater longevity of the editor. Finally, delivering the editor on a web page meant that, like the game BLITZ, it could be accessed by anyone around the world who was interested enough in BLITZ to want to help in the effort to extend its functionality by designing a level for others to play. The underlying design of the editor as it was eventually produced, is simple yet effective. The majority of the graphics for BLITZ reside in a single CompuServe GIF file. This modular design allows us to modify easily the entire look and feel of a given level by simply switching out this particular file with a new one that contains the alternate graphics. This single file GLOM:Information Agglomerates 11 - . ___;_.11-;. - 111.. - - I - also increases the efficiency of the process of loading BLITZ. At this time, there is limited support for ZIP or JAR files in browsers. As such, at run time the individual resources that go into making an applet such as class files, sounds or graphics all require separate HTML requests. Fewer calls lead to a speedier load. Fig.5-8: Attraction screen and still from game play. The goal of BLITZ is to reach the end of the level as quickly as possible with the highest score. Melissa's level editor by default loads in the GIF file associated with the first level of BLITZ, but it does include a feature which will allow you to specify a path to an arbitrary GIF. This enables the designer to design any number of custom levels. The interface itself is straightforward and does not require a significant amount of effort or time to learn. As you can see in Figure 5-7, the applet canvas is broken down into four major areas. The first area is dedicated to the specification of the overall features of the level. A text field titled "level width" prompts the user to specify the number of columns that make up the sideways dimension of the level. N.B. all levels are twelve rows high. The scrolling motion of the level does not extend in the vertical dimension which accounts for this constraint. The code, however, does not restrict in any way the width dimension of a particular level. Immediately to the left of the width specification text field are GLOM:Information Agglomerates two small windows which allow the user to set which tile will be used as default for the ground and for the wall. These default to tile 6 for the ground and 0 for the wall (Indestructo wall). The top left corner of the canvas displays the cell graphics. The user selects a given cell by positioning the mouse over that cell and clicking once. A light red outline surrounds the cell, indicating the selected state. Once a cell has been selected, the user can begin to design a level by "painting" in the large preview window that fills the upper right quadrant of the canvas. The preview window straddles a scroll bar that allows the user to access any part of the level they are creating. By positioning the mouse over a target cell in the preview window the user can specify the final appearance of that cell with a single click. When the level is ready for testing, the two button widgets and text area residing in the bottom left quadrant of the preview window come into play. The leftmost button labeled "display array" instantaneously converts the graphical representation of the level that appears in the preview window into an integer array that fills the text area straddling the two buttons. The integers that comprise this array are simply the cell number from the original level graphics file. This array is used in the BLITZ Java code to represent the level during game play. The second button, labeled "load array" allows the user to load a previously designed level into the preview window. This action is achieved by pasting the properly formatted existing one-dimensional integer array into the text window and subsequently pressing the "load array" button. At the time of this writing, this is the extent of the functionality of the level editor. Future improvements planned for the editor can be separated into two categories: interface design and underlying feature set augmentation. While functional, the overall appearance of the interface could be improved. The general experience of interaction could be greatly enhanced by replacing the standard Java widgets with ones of our own design. One proposal calls for replacing the widgets with a single offscreen buffer that draws its pixels from a graphics resource file. This arrangement, closer to the model championed by score-driven software like Macromedia's "Director" suite of software, would allow periodic updates.This update process could be accomplished by the simple manipulation of a GLOM:Information Agglomerates E.~ - - ~. ~uu u m Fig.5-9: Two levels designed by hand by urop Jocelyn Lin during the early developmental stages for the game BLITZ. single GIF or JPEG file in a 2D graphics editor like Adobe's Photoshop. Events such as mouse clicks would be handled and mapped to an internal representation of a rectangular "hot spot" portrayal of the interface. In addition, we would like to implement the ability to test out a level that is currently under design. Instead of simply outputting an integer array for inclusion in the BLITZ code, the level editor could incorporate a modified version of the BLITZ game. Thus, as a user designed a level they could test out their design by actually playing the unfinished level. This refinement would greatly simplify the current design/implementation pipeline that involves pasting the newly generated integer array into the BLITZ code followed by a fresh recompilation of the BLITZ code. This model could write to a file or-in order to circumvent Java's security restrictions-could register the level in progress with a level server. This server could communicate with the level editor using standard network protocols in order to maintain a dynamic record of all possible levels. The server, running as an application on the domain server, could write a file on the server's filesystem. This would allow us to tag a level as a WIP (work in progress) or F (finalized). Given this designation and a unique level ID, the level server could serve double duty: concurrently servicing the level editor and the BLITZ code. As new levels came online, BLITZ could list them along with information about the designer. In this way players could select which level they wanted to play at the start of their game. Working with Jocelyn Lin, we developed preliminary design for three levels along with accompanying graphics files. Jocelyn's charge was to create GLOM:Information Agglomerates I - U - three unique sets of tiles, based loosely on the original set, for inclusion in the more advanced levels of BLITZ. The final product can be observed in figure 5-2.What is not so apparent in this black-and-white reproduction is the shift in color palette that Jocelyn applied to each set of tiles. Through her designs, Lin proposed a significant re-design of the wall elements, the one-cell bunker and the four-cell boss bunker. The ground and terrain cells she created tile, creating an overall patterned impression to any continuous stretch of unobstructed flooring. Lin's schematics for higher level designs are visible in figure 5-9. Originally sketched out on long, accordion-like pieces of paper, these level designs are distinct from our own and promise to add a welcome variety to BLITZ when they are incorporated. *len game gamecliet Liserver database database * glom Fig.5-10: Schematic of the BLITZ system and its relationship to the database and BLITZGLOM layers. An unlimited number of clients load the BLITZ game (Java) from our web servers. These game clients broadcast their scoring information to our database server (Java) which reflects all it receives to the database (Visual Basic) where it is parsed and recorded. The GLOM system (Visual Basic)then queries the database in order to gather the information it needs to build its visualization. GLOM:Information Agglomerates 6 GLOM 6.1 Introduction What is this word GLOM? What is a GLOM? The word glom comes from the abbreviation of agglomeration.Defined in the OED as "a mass or collection of things"(Fowler, 1990), the word is also used as a verb as in "to collect into a mass". In the context of this thesis, a GLOM is a purely computational collection: a visual representation of a given set of data. In this section of the thesis, we introduce the concept of a GLOM through a description of its ideal characteristics. The concept is further developed through the presentation of a GLOM system based on the data generated and collected by BLITZ: BLITZGLOM. BLITZGLOM is the culmination of our research at the Media Lab. As such, it leverages off many of the ideas presented in the previous sections of this document. In effect, the description of the characteristics of the ideal GLOM system are a distillation of the lessons learned through the design and implementation of the several sub-systems heretofore described. More than a mere series of isolated implementations, these computational artifacts serve as dynamic manifestations of what purports to be a new doctrine in the field of information architecture: Organic Information Display (OID). OID celebrates the lessons of traditional fields of aesthetics and computation, seeking a symbiosis between the products of reason and emotion. This is not a new goal: mankind has struggled from time immemorial with the tension between the tools he has forged and their GLOM:Information Agglomerates P"011010 I OP 'kit interplay with his affective being. What is unique about OID is its raison d'irre: the synthesis of the organic and informational for the betterment of our communal wisdom. In the modern world, we find ourselves at an imbalance; we are overwhelmed by the creation of our creations. As our machines collect and generate, we are smothered under a blanket of data. OID seeks to find the balance between knowing and understanding, by design. 6.2 GLOM characteristics 6.2.1 Form and Meaning In your mind's eye, consider an ancient oak tree, solitary on the crest of a hill in an open field. From a distance, you can appreciate the over-all form of the tree: the strange symmetries of the branch network, the shape and color of the canopy. As you come nearer, you notice the leaves rustling in the breeze. Strong winds have torn certain branches away from the trunk. You see faint traces of charred bark, indicating that at one point this tree survived a fire in the field. The tree is teeming with life, from the birds that temporarily alight on a branch to rest, to the ants and grubs that make a meal of leaves. We know a significant amount about this particular tree. No text. No numbers. All this information has been gleaned from a quick examination of only the formal qualities of an object: its shape, not its numbers. Now consider the stock pages of the Wall Street Journal. Columns and columns of minuscule sans-serif type, accurately detailing the smallest Fig.6-1: 1he original GLOM. This GLOM, created on a Macintosh using the Quickdraw 3D graphics library, was the first GLOM ever. It demonstrated the viability of the Vector Slide algorithm for agglomerating an arbitrary set of data. GLOM:Information Agglomerates fluctuation in price, volume and thereby intrinsic value of any particular security you care to track. Step back from the page. Observe the larger structures: line-spacing, margins, column width, the dimensions of the pages. These pages are the picture of refinement: carefully managed, rational, terminally specialized. Unlike the tree, separate representations are required to meaningfully express the micro and the macro. The listings are the micro view of a particular exchange; separate graphs and charts are used to communicate the macro: trends in the over-all market, the state of national economies. In our research, we strive to create representations of information that incorporate the qualities of natural expectation and familiarity usually found in organic systems with the efficacy and focus of traditional alphanumeric descriptions. As such, a necessary characteristic of any GLOM representation is that its form is related in a meaningful way to the content that it comprises. This quality cannot be overemphasized. It is our observation that there has been an enormous effort in response to the perceived threat of information overload. The popular press is full of sensationalistic headlines like "Data Smog, Surviving the Info Glut" (Shenk, 1997) or "Information Anxiety: What to Do When Information Doesn't TellYou WhatYou Need to Know". (Wurman, 1989) Most of these articles and books offer suggestions about how to streamline your information flow. They tell you which articles to read, which web sites to visit which day planners to use to make the most efficient use of your time. In addition, a few of these works go as far as to suggest new spiritual approaches to the problem of feeling overwhelmed by the flow of information. Another genre of literature, championed by Edward R. Tufte in his three-book series and through his lectures, concerns itself with the taxonomy of information display. These pieces catalogue the myriad methods of representing bodies of information while offering informed opinions about the efficacy of the various techniques along with suggestions for the refinement of extant methods. Less common is literature outlining entirely new approaches to dealing with information representation. In part, this is what we strive to accomplish with the OID initiative. GLOMS should present the user with unique and interesting forms. These forms must be derived from the data itself, and ideally these forms GLOM:Information Agglomerates Fig.6-2: A hanging Petunia plant. Physical objects that we interact with on a regular basis, afford a sense of familiarity and expectation. This plant served as the inspiration for the DataBloom Glommit, a Glommit that embodies the mechanisms of a physical flower in order to visualize n-dimensional data sets. will be uniquely memorable. This is an important distinction because it sets GLOM representations apart from traditional representations on at least two fronts. The first distinction, which is considered in further detail below, is that this implies the data sets are somehow subjectively distorted. The second is that GLOM representations are individually distinct with respect to their nuances of emphasis. That is to say, the way an individual GLOM emphasizes the particular maxima and minima of its data set may or may not share anything in common with the next GLOM. This is different in a subtle but critical way from existing representations. Consider for a moment your typical graph or bar chart. From one graph to the next the values assigned the axes are certainly mutable. However, aside from deliberate distortions of scale, the viewer can expect certain homogeneity between all graphs. We have all come to internalize the meaning of what appears to be an exponential curve. Periodic undulations offer no surprise. Through protracted exposure to this kind of representation we have learned to read certain biases with relative ease. This is a good thing. However, there is nothing unique about a given type of curve between representations. Even the manipulation of hue, line width or use of clipart fails to differentiate these plots in any meaningful or-perhaps more importantly-memorable way. Traditional techniques invite the user to build up a generic familiarity between individual representations. For lack of a better term, this pervasive familiarity could be considered to be a "meta-familiarity". Emphasis GLOM:Information Agglomerates of the unique character of individual representations is not seen as desirable as much as conformation to established conventions and avoidance of common pitfalls. The antithesis of this success has been suitably labeled "chart-junk" by Tufte. (Tufte, 1990) We agree, of course, that extraneous or gratuitous design elements are undesirable in most if not all situations, but this is beside the point. What OID calls for, and what every GLOM representation should exemplify in addition to a quality of meta-familiarity is an unforgettable individual uniqueness. Fig.6-3: Early rendereing of the representational DataBloom. For the first time, we see an articulation of the petals that will allow the bloom to open and close. The petals are also layered and of varying hues and saturations. Inset image demonstrates the polar distribution of differently-aged petals. It is certainly advantageous to establish a language of design for any but the most political of design systems. The Wall Street Journalis successful in part because of its well-conceived layout. A reader can come to the paper every day with a sense of expectation, knowing that a given feature will appear in a certain position on the page or section of the paper. Embedded pen and ink illustrations generally signify a particular type of story as do in-line graphs or charts, etc. These are all facets of uniqueness of The Journal.The designers have taken elements of newspaper meta-familiarity and made them their own. Thus, at a newsstand The Journalstands out from the rest. It has a distinctive style while remaining within the vocabulary of the genre. In a like manner, GLOM's strive to push a similar individuality to the maximum extent while remaining within the bounds of a certain commonality. The constitution of this commonality is tied up in issues of form, surface and dynamism, the elements of which are consid- GLOM:Information Agglomerates - - IM IM-0* - - - ered in detail in the remaining sections of this chapter. Thus, a user could approach a new GLOM expecting a completely unique overall form but with the comfort of knowing that the manipulation and navigation of that form will be achieved through familiar means. Why strive for this individual uniqueness couched in systematic familiarity? Certainly, providing the user with the foregone understanding of the interface they will encounter can be considered to be an advantage rather than a liability. In this way the user is shielded from the inconvenience of having to re-learn their way around every time they encounter a new GLOM. Of course, there is an inherent danger in any system of stagnation with the inevitable progression to the eventuality of irrelevance. Any established component of meta-familiarity should be a candidate for systematic review and revision if necessary. In addition, the underpinnings of the system should never be considered set in stone. Paranoia in this case is a good thing. Regular relevant revision should be considered a necessity. Given the comfort and convenience of a systematic underlying architecture of familiarity, the necessity for case-by-case uniqueness must be reiterated. An intrinsic part of the power of a GLOM lies in the extent of the Fig.6-4: Early sketches for the DataBloom. Here we -. see the development of the polar distribution scheme SCA for the player's scores. Z uT -Par NNTAt- 7 GLOM:Information Agglomerates Also, this page shows the first attempts at designing aparametric hull for the [DataBloom's petals. degree that a particular representation is memorable. Empirical evidence to support this supposition comes from the reactions of observers of the Gradus project. Almost without fail, everyone who has seen Gradus has referred to it in subsequent discussions in terms of an assumed shape. To most, the swirling cloud of words appears to be a tornado of sorts. To others it appears as a brain stem. Still others consider the form akin to a giant jellyfish. The individual mapping although interesting is not as interesting as the proclivity of the viewer to create this kind of connection. Herein lies the potential fundamental strength of any well-conceived GLOM representation. It seems humans have a natural tendency to attribute a familiar object to if not anthropomorphize unfamiliar complex systems. Case in point, the creation of the constellations in the night sky. Here, among others, navigators use this particular mapping to aid their memorization of the many stars in process of their job of determining position or plotting a course. In this instance the mapping becomes a natural mnemonic device. A less utilitarian and as such perhaps a more convincing argument for our innate inclination towards such activity, is cloud watching. It is natural, even enjoyable for one to perceive the familiar in the protean vapors. One person may see a bunny in a cloud while another sees a flower. In any case, the result is greater retention. This point has been demonstrated in controlled circumstances. It has been shown that "despite the fact that imagery and mnemonic-generation skills develop slowly, it is always possible to obtain positive imagery and mnemonic benefits by providing a prompt.. .If the goal is simply to build up an associative knowledge base, providing pictorial mediators is a solution that can be implemented at almost any age." (Pressley, 1987) In the same way that traditional mnemonic systems provide an entree to the underlying information that is to be retained, so do GLOM representations demonstrate a continuum between the universal and atomic viewpoint. Ancient Greek orators were said to have constructed elaborate architectures in their minds to which they established connections to the body of knowledge they were concerned with. For example, if one were to attempt to memorize an entire four-act play they could create in their mind a four-roomed house. Particular objects could stand in for a specific character. In this way the main protagonist could become a vase, or a mirror. Each room could signify an act in the play. As the characters ran GLOM:Information Agglomerates Fig.6-5: Early sketch demonstrates the desired organic look and feel of the ideal GLOM represenation. Individual glommits are distinguished yet are perceived to be a natural part of a much larger whole. through their dialogue the orator could be mentally travelling down a table or credenza in their memory palace. This table could be covered in an orderly manner with the objects related to a particular character. As such, when the storyteller encountered a gilded box it would serve as a mental trigger for a young maiden's monologue on the occasion of her marriage. In the following passage Quintilian, "the dominating teacher of rhetoric in Rome in the first century A.D." (Yates, 1966) describes the process invented by the Greek Simonides. This achievement of Simonides appears to have given rise to the observation that it is an assistance to the memory if places are stamped upon the mind, which anyone can believe from experiment. For when we return to a place after a considerable absence, we not merely recognise [sic] the place itself, but remember things that we did there, and recall the persons whom GLOM:Information Agglomerates we met and even the unuttered thoughts which passed through our minds when we were there before. Thus, as in most cases, art originates from experiment. Places are chosen, and marked with the utmost possible variety, as a spacious house divided into a number of rooms. Everything of note therein is diligently imprinted on the mind, in order that thought may be able to run through all the parts without let or hindrance. The first task is to secure that there shall be no difficulty in running through these, for that memory must be most firmly fixed which helps another memory. Then what has been written down, or thought of, is noted by a sign to remind of it. This sign may be drawn from a whole thing, as navigation or warfare, or from some word; for what is slipping from memory is recovered by the admonition of a single word. However, let us suppose that the sign is drawn from navigation, as, for instance, an anchor; or from warfare, as, for example, a weapon. These signs are then arranged as follows. The first notion is placed, as it were, in the forecourt; the second, let us say, in the atrium; the remainder are placed in order all round the impluvium, and committed not only to bedrooms and parlours, but even to statues and the like. This done, when it is required to revive the memory, one begins from the first place to run through all, demanding what has been entrusted to them, of which one will be reminded by the image. Thus, however numerous are the particulars which it is required to remember, all are linked one to another as in a chorus nor can what follows wander from what has gone before to which it is joined, only the preliminary labour of learning being required. What I have spoken of as being done in a house can also be done in public buildings, or on a long journey, or in going through a city, or with pictures. Or we can imagine such places for ourselves. GLOM:Information Agglomerates We require therefore places, either real or imaginary, and images or simulacra which must be invented. Images are as words by which we note the things we have to learn, so that as Cicero says, "we use places as wax and images as letters". It will be as well to quote his actual words: "One must employ a large number of places which must be well-lighted, clearly set our in order, at moderate intervals apart, and images which are active, which are sharply defined, unusual, and which have the power of speedily encountering and penetrating the mind." Which makes me wonder all the more how Metrodorus can have found three hundred and sixty places in the twelve signs through which the sun moves. It was doubtless the vanity and boastfulness of a man glorying in a memory stronger by art than by nature.(Yates, 1966) In a more abstract sense, this is what we are providing in GLOM representations. The hull of the GLOM is akin to the house in the previous example; its rooms are the shifts and biases within and without the structure. An important advantage of the GLOM however, is the ability to move visually from the macro view to the level of specificity that is required. In the Gradus project this quality is demonstrated by the bulge that represents the burgeoning of words during the period that spanned the end of the Middle Ages through the European Renaissance. From a distant vantage point, all the user appreciates is the shape of the bulge in contrast to the rest of the form: a room with respect to a building. As the user zooms in, they move through an appreciation for fields of color (in this case zones of words with differing national origins) to a final resting position where the individual word becomes the focus. For the orators this progression would be akin to increasing in level of detail from the name of the play down to the individual sentence of a character in that play. This process has effectively substituted symbology for the less efficient practice of providing the user with the simply formatted bulk of data. Spreadsheet applications are perhaps the best example of the latter approach, simply tabulating data in rows and columns which offer a sense of order that is only superficially related to the underlying data. In this model, one could group the names of the months in a single column. This GLOM:Information Agglomerates would establish a real but shallow relationship between the words. A more profound connection might be made if in addition to being identified as similar quantities, the names of the months could somehow give the viewer a sense for the individual length of a month, or perhaps the type of weather one might expect in that month. It is our belief that this level of concentrated meaning might be achieved through increasingly symbolic representations (as demonstrated in the Munsell, StockGLOM and DataBloom projects). To this end, we take heart in the words of Charles Babbage. "I soon felt that the forms of ordinary language were far too diffuse.. .I was not long in deciding that the most favorable path to pursue was to have recourse to the language of signs. It then became necessary to contrive a notation which ought, if possible, to be at once simple and expressive, easily understood at the commencement, and capable of being readily retained in the memory." (Charles Babbage, "On a method of expressing by signs the action of Machinery," 1826). This passage distills the essence of what we are striving for in the creation of GLOM systems. 6.2.2 Organic/subjective representations In our efforts to create memorable shapes, we have chosen to aim for an organic rather than an inelastic or inorganic representation. This approach has several implications. First, our forms should appear to be "alive". This animate quality is not related to the ability of a system to pass a Turing test or any other trial that is designed to establish an objective criterion for distinguishing the presence of "original" thought in a computational device. Rather, we seek to provide the impression of life through manipulation of form. More specifically, we propose the implementation of animations based on simple rules that begin to mimic the types of decisions living or growing things make. Our definition of "living" then becomes inexorably linked to the notion of change. Without change, or inanimate periods book-ended by postponed change there is no life. Another implicit characteristic of organic representations is the tension between the perfect and the imperfect. Current display technologies are at the same time moving away the analog while further enabling the programmer to simulate an analog signal. For instance, CRT displays are by nature more analog that LCD displays, at least in appearance. The scanning electron beam excites phosphors inside the glass tube, resulting in GLOM:Information Agglomerates Fig.6-6: The DataBloom. On the left a final rendering, accompanied by the original conception sketches. The DataBloom is a highly representative Glommit, capable of illustrating trends in highdimensional data sets. The DataBloom incorporates a sense of familiarity and expectation that aid the user in the process of learning the nuances of the GLOM interface. the impression of an emissive source of light. Calculated combinations of these micro-excitations using different colored phosphors, allow us to simulate a broad spectrum of color. However, different batches of phosphors result in slightly different color representations, as do variously calibrated beams and differing lighting conditions. In this way, the digital world is introduced to some of the same limitations the world of print has struggled with for generations. Liquid crystal displays offer fewer limitations of this sort due to the nature of the technology. As in a dye-sublimation printout, the individual pixels of a CRT display are hardly discernible; there is a measured amount of overflow depending on the shadowmask used in the particular monitor. LCD displays are overtly pixellated. In this way, displays are moving away from the analog. In that resolutions are increasing at the same time, along with brute processor performance our ability to introduce a calculated "analog" quality to our GLOM:Information Agglomerates designs. The overflow of the glowing phosphor can be simulated through anti-aliasing. This is not the same as introducing an analog film grain/ scratch to a digital movie. This kind of trompe-l'oeil is not related to our current discussion. Our point is simply that the level to which we as information designers are able to control the visual qualities of our representations is constantly increasing. It is this increased level of control that will allow us to increasingly articulate our designs, giving us the opportunity to create organic constructs that are inspired by real world counterparts but that can only exist in the digital realm. The less the viewer is aware of this distinction the better. For our purposes, there is no advantage in emphasizing the medium, only the message. Similar difficulties exist in rendering techniques. Even scenes rendered with radiosity techniques are clearly computer generated. The surfaces are too perfect, the geometry impossibly precise. This kind of perfection can be related to issues of symmetry and asymmetry. As Ian Stewart notes: Something in the human mind is attracted to symmetry. Symmetry appeals to our visual sense, and thereby plays a role in our sense of beauty. However, perfect symmetry is repetitive and predictable, and our minds also like surprises, so we often consider imperfect symmetry to be more beautiful than exact mathematical symmetry. Nature, too, seems to be attracted to symmetry, for many of the most striking patterns in the natural world are symmetric. And nature also seems to be dissatisfied with too much symmetry, for nearly all the symmetric patterns in nature are less symmetric than the causes that give rise to them. (Stewart, 1995) Our studies of typography, particularly the ideas and examples of Jan Tschichold have reinforced this bipolar approach to the question of symmetry. People in the fields of cinematography and game design, have introduced one approach to breaking the too-perfect symmetries of polygonal systems: texture mapping and parametric distortions. Elaborate texture maps, often generated from photographs of physical environments help to introduce an element of imperfection to rendered scenes. Pictures GLOM:Information Agglomerates of rusted metal, cracked and peeling paint, soiled surfaces and dirt are employed in this process. Alternately, custom shaders are created to simulate hair or the scaled surfaces of a dinosaur's body. Our solutions, for the moment eschew these solutions in favor of heavily populated systems with only the simplest of geometry. This approach gives us at least two advantages. First, with the extra computational cycles this approach affords we can concentrate on the development and incorporation of increasingly sophisticated behavioral models for the individual components of our system. A second advantage is the avoidance of the onus of the representational. Humans are very good at telling the difference between a real object and an ersatz representation. This is particularly true for representations of humans or other living beings. As long as we keep our geometry abstract, we can avoid this difficulty. As long as that geometry "behaves" in an interesting enough manner, we can begin to build up a relationship with that object along with a sense of familiarity and expectation. This familiarity will begin to allow the user to process information about a given system in a more efficient manner. 6.2.3 A designed "distortion" of the data It is important to note that attempts to instill a living quality into GLOM systems have led without exception to the distortion of the system's underlying data set. The successful manipulation of this distortion is fundamental for the overall success of any GLOM visualization. Moreover, it is our belief that the overt introduction of distortion in the representation of our data is an important distinguishing characteristic of GLOM's and instrumental in their ability to communicate. It is a communal conceit and perhaps an inherent disinterest/lack of time that keeps us from questioning Fig.6-7: An illustration of the Vector Slide technique for glomming. Individual glomnmits slide along their vector to the origin until they reach it or collide. GLOM:Information Agglomerates the veracity of the charts, figures and statistics we encounter day to day. Certainly, at an instinctual level we are for the most part well aware of the pervasive manipulation of information that is common practice by statisticians. As Disreali reminds us, "there are three kinds of lies: lies, damned lies and statistics." We seek to distort data, but we aspire to an aesthetic distortion. This is distortion by design. Certainly, those who wish to deceive through their designs do so with malice of forethought. It is true, these people also distort by design. However, an important distinction exists between our work and this other kind.The distortions we introduce are designed to enhance the user's ability to glean desired information from a given set of data. Speaking of the field of graphic design and fine art, Paul Rand suggests: "Aesthetics is the standard by which a work of art is judged. It is essentially the study of the successive or simultaneous interaction of form and content. How skillfully these components are fused will determine the aesthetic quality of the work in question. There are two parts to this hypothesis. One relates to the artist, who, unlike the spectator, is intensely involved-intuitively, emotionally, and perceptually; the other, to the object, which possesses a plastic unity that differentiates it from the ordinary artifact." (Rand, 1996) Our interpretation of these sentiments goad us on to seek out the most harmonious techniques for the introduction of advantageous distortion into GLOM systems. It is through the subtle manipulation of the techniques of the designer that we will successfully integrate a targeted focus of interest to our designs. Ultimate success is achieved when this manipulation is not the user's primary concern although they are aware of the underlying methods. Hence, the importance of honest system dynamics. The "vector-slide" technique, introduced in the Munsell project and early GLOM prototypes serves as a useful example of the difficulties involved in maintaining an honesty throughout the distortion process. This technique for achieving an agglomerated state can be described as follows. In an attempt to reach an agglomerated state, one approach might be to "scale" the plot, that is to draw a vector from the origin to each of the coordinates and slide the cubes in toward the center along these various vectors.There are two disadvantages to this approach. The first is that at any given point GLOM:Information Agglomerates -I - -5 -6 -5 -4 -3 -2 -1 -10 1 iFig.6-8: On the right, athree-dimen- sional representation of Brsenham's 2 3 4 5 classic scan-converting algorithm. On the left, a potential scenario for the Vector Slide technique. B is the origin. during the scaling process any one cube might intersect another, thus adding confusion to the scene. The second major drawback of this approach is that taken to its natural conclusion all cubes end up at the origin that does not leave us with a very interesting GLOM representation. A modified version of the scaling process will however yield some interesting results. In order to solve the first problem of intersecting cubes we can break up our world into "voxels" or "volume pixels", essentially an infinite number of imaginary cubes. The next step is to establish the rule that no piece of geometry, in this example our cubes, can be plotted to a coordinate other than an integer value (which corresponds to the voxel space we have created). In order to achieve this we employ a scan-converting algorithm, such as Bresenham's Line Algorithm, 4 to determine the legitimate intermediate points along the vector to the origin. Figure 6-7 shows a three-dimensional representation of this process. Another method is introduced into the system to avoid the possibility of two cubes being plotted to the same voxel. Before geometry is translated, find out the distance between the individual cubes and the origin. Tell all cubes that they want 4.Foley, JD,Van Dam,A "Fundamentalsof Interactive Computer Graphics" (Reading, MA: Addison-Wesley PublishingCompany, 1982) 433-6. GLOM:InformationAgglomerates to be at the origin. From the closest cube outwards, follow these steps: having calculated the scan-converted line to the origin, tell the cube it is okay to move as close to the origin as possible. Thus, every cube after the first will occupy the unoccupied voxel closest to the origin along their vector. Figure 6-8 illustrates this process. Cube "C" will be polled before cube "D" and will be assigned to voxel "A" (the origin voxel having been occupied by the rightmost cube which has the closest initial position of the bunch). When cube "D" is finally polled it will plot to the next cube out along its vector beyond "A".This approach also solves the second problem we identified: the cubes no longer converge to a single point.You now have a glom. Refer to Figure 6-1 for an illustration of a simple one hundred point glom. 6.2.4 The Battle with the Representational A fundamental limitation of abstraction is its initial lack of context and the resulting unfamiliarity that lack engenders. The temptation is to offer ever more representational forms as a solution. After our initial experiments with purely abstract geometry at the atomic level, we entered a phase of experimentation with the representational that culminated with the DataBloom glommit. The DataBloom was the result of our search for an increasingly complex atomic unit for a given GLOM system. The earliest GLOM prototypes, including Gradus, Munsell and the Tribune project all sported rather simplified glommits. In these systems individual data points or records of data were proxied by unsophisticated abstract geometry or by text. As such, the communicative potential of the glommit was severely curtailed. Certainly, there are situations that call for the simplest and most elegant solution. However, we were interested to explore new ways of mapping an increased number of variables to the component pieces of a GLOM. For example, the cubes in Munsell were colored according to the specific RGB triplet in the system they were there to represent. Even at this level we had the option of mapping additional vectors of information-perhaps the emotional characteristics, or trend/popularity statistics-to an individual cube through the manipulation of its localized motion or its transparency, scale etc. These freedoms were not new. What we sought was an increased density of mappings for a given piece of geometry. To this end we looked to nature. GLOM:Information Agglomerates Objects in the natural world are already familiar and for the most part densely packed with information that tells the user about the state of that object. Take for example a typical trip to the local grocer. As the shopper makes their way through the produce department they are presented with a number of display bins filled with various fruits and vegetables. If one were to consider the bin of oranges for a moment, they could begin to appreciate the amount of information we are able to glean from even a cursory examination of this type of organic mass. A bin like the one introduced above might contain upwards of a hundred separate oranges. The shopper's goal might be to pick out six or seven oranges with the intention of making orange juice. As they pick up particular oranges they can take note of the weight of that orange. Conventional wisdom suggests that the juicier an orange is the heavier it will be. The thickness of the skin, the size and spacing of the dimples and the presence of bruises or any type of parasitic growth: these are all characteristics of oranges that we have come to be familiar with through prolonged exposure. With the DataBloom we began to explore ways of incorporating similar MW 4UW1A M.M. NI11 f*1AA~ ,a f4A" LY %3 To PALi fonma~v awU L lpy GLOM:Information Agglomerates At-# Fig.6-9: Designs for the modified DataBloom Glommit. Original designs proved too representational, producing in the user an expectation for articulation in areas that seemed superfluous or harmful to the visualization process. By abstracting the familiar mechanisms of physical objects, we aim to maintain the user's sense of familiarity/expectation while avoiding the need to implement gratuitous detailing. characteristics into our GLOM systems in an overtly representational manner. The DataBloom, as it name suggests, looks like a flower. During the summer of 1997 I was inspired by a potted plant (Fig. 6-2). Hanging in stark relief against the white wall of my parent's house, this petunia plant struck me with its cohesive yet completely transparent complexity. The plant was a tangled organic mass. Thousands of leaves in varying states of health crowded together along with several hundred pink, funnelshaped blooms. The flowers were also in various states of health: running the gamut from freshly bloomed to mostly decomposed. (N.B. it must have been an oversight, my mother is an excellent gardener!) This collection of leaves, stems and flowers was quite dense, forming a roughly pearshaped mass. Upon reflection, we were impressed by the amount of information the state of a flower could hold and the ease with which we were able to perceive this state. We began to think about how to isolate the discreet characteristics of a flower: what were the individual components, and how did they change as the flower moved through its life cycle? As well, the single flower was clearly a small part of the larger body of the plant. Each flower was richly endowed as an individual in the community of the plant; it kept its own record of state.Yet, each bloom was inexorably linked to the state of the overall plant. If the plant did not receive enough water or nutrients, every component of the plant would be affected in its own way. Still, this did not prevent the single leaf or flower from being affected on an individual basis. Finally, the plant as seen from a distance had a strange and satisfying symmetry. It was pear-shaped, but like a pear no single slice could yield a consistent diameter or two identical halves. At this point, we had already decided that the data set we would be working on for this thesis would be the statistics gathered from people who played an online game of our making. Thus, in the initial concept stage for the design of the DataBloom we began to map its characteristics to the kinds of data we anticipated from the game. The petals of the DataBloom would represent and individual game play. They would be distributed according to polar coordinates around the center of the bloom. The angle of distribution would be determined by normalizing the score from that game play against the overall high score in the system. Under this arrangement, if a player were just learning how to play the game their scores would in all likelihood be clustered between the one and three o'clock GLOM:Information Agglomerates Fig.6-10: Sketch of the essential functionality of the BLITZGLOM system that is currently under development. In the foreground the star-like structure represents an individual player's score record. Here we see what is in effect a highly abstracted version of the original databloom. Outlying shapes are the player's previous games. The polar distribution of these "petals" is according to the date of that game. In the background you can see the layered GLOM representation from which the central record was picked. In the top left we see a miniature version of the overall structure used to give the user a sense of orientation when they are zoomed inside the structure. position. As the player improved their abilities, their scores might begin to spread out somewhat, and as they began to log the higher scores in the system, they would introduce petals closer to ten o'clock or midnight. Each time a new score was added, it would be added slightly beneath the petal that preceded it. In this manner, we would prevent the eventuality of impacted geometry: the petals would spiral downward at time progressed, like some spiral staircase with impossibly placed steps. The hue and saturation of the individual petal would be determined by the time at which that particular score had been logged. Older score petals would appear desaturated and of a less vibrant hue; fresh scores would be colorful and bright. Under this scheme, a user could glance at a particular DataBloom and quickly get a sense of how the player whose scoring history was embodied in that bloom had progressed in their abilities over time. The DataBloom is also animated. It has the ability to close to what in the GLOM:Information Agglomerates physical world might be considered a nocturnal state. Upon command, the flower blooms revealing its petals for easy consideration. This feature was added for at least two reasons. First, people expect a flower to bloom and the process is an aesthetically pleasing one. One should never underestimate the importance of providing the user with a pleasant subjective experience in the manipulation and use of information systems. If the project can communicate and satisfy on a more spiritual level, it is doubly successful. The second reason for giving the DataBlooms the ability to bloom was purely a matter of efficiency. In any three-dimensional computational environment there is a persistent trade-off between polygon count and render speed. We were interested in introducing a rudimentary imageloading scheme to increase rendering speed while maintaining the appearance of the same quantity of raw geometry. Having the DataBlooms close upon themselves led to occluded geometry: the inner petals were simply not visible after they were wrapped up by the outer ones. Right away, we were able to cut down on our overall polygon count by culling the occluded geometry. In addition, as individual DataBlooms moved farther away from the viewer's camera we dynamically reduced the complexity of the bloom's geometry. The individual petals of a given DataBloom were represented internally as a simple triangle-strip set. The edges of this set were defined by two three-dimensional Bezier curves. If we desired to reduce the polygon count on a particular petal, we simply lowered the sample rate on these curves. The result, of course, was a coarser rendition of a petal, but in that the petal was distant from the viewer it was not a readily perceivable degradation. We also designed and implemented a system that integrates the DataBloom representations with a three-dimensional tracking device: the Polhemus FasTrac system. The Polhemus FasTrac system is made up of a sensing cube 2" on a side-that is tethered by a 6' cord to an external unit that is in turn connected the controlling computer by a serial cable. The external FasTrac unit allows the user to connect up to four sensors that are themselves connected by a 6' cable. The Polhemus device transmits data at approximately 60Hz. The programmer can extract information about the position, pitch, roll and yaw of the various sensors. We used the Polhemus technology as a means to picking and navigating in early prototypes of the DataBloom environment. In these systems, the user can inter- GLOM:Information Agglomerates actively pick various DataBlooms by positioning the Polhemus trackers appropriately. The user holds one of the Polhemus sensors and waves their hand about, moving from bloom to bloom. As the user nears a particular DataBloom, it opens in response revealing the score history it embodies. The Polhemus device becomes a sort of magic wand, activating all it touches. The design and implementation of the DataBloom representation was educational. Through this project, we learned that for the type of information representation we are currently interested in it is not suitable, perhaps even detrimental to deploy shapes that are highly representational, i.e. very similar to a real world counterpart. The closer a virtual shape is to its physical double, the more difficulties you run into with respect to your ability to deliver on expectation. If a user sees what they perceive to be a flower, they expect it to behave like a flower in as many ways as possible. If your virtual flower is not fragrant, it could be perceived as a shortcoming. It would be best if you could water your polygonal blooms, or the user will be disappointed. In addition, aligning yourself with a real world object brings with it all the associations people make with that object. This can be distracting. After observing this reaction to the project, we froze work on it because we were not interesting in implementing the kinds of expectations users presented to us. Undoubtedly, these suggestions would have led to a more lifelike representation of a flower. This was not our goal. We were interested in communicating information about something beyond the flower: the player's score history. In order to proceed toward this chosen goal, we decided that an intelligent course of action would be the pursuit of increased abstraction. This would be achieved through a studied distillation of the essence of familiarity. In the future, we would not focus on the outward shape of familiar object as much as the underlying mechanisms of familiarity. Behaviors would be separated from specific shapes, systems of organization from their expected components. Under this approach, it would not be so important to have a series of petals blooming. Rather, the process of opening would be separated from the polar organization of a series of small multiples. 6.2.5 Axes There are two main components to any GLOM representation: the axes GLOM:Information Agglomerates of organization and the atomic data units that conform to the established system of organization, the Glommit. The axes serve to contextualize the entire system. Here, the user or the designer makes the decision to separate the component parts of the GLOM according to an arbitrary metric of distribution. The successful identification of these metrics factors heavily into the ability of a particular representation to successfully communicate the nuances of its underlying data set. The process of identification for these axes is extremely specific to the given data set. Who should decide which axes should be used? How are these axes identified? These critical questions must be answered on a case-by-case basis. The StockGLOM project is a useful example in the illustration of this process. It is likely that the designer of a GLOM representation is not an acknowledged expert in the field of the information they are seeking to represent. An Fig.6-1 1: Here we see a closeup of a layer from the proposed BLITZGLOM system. An individual layer contains a sampling of the overall population that is determined by a stepped distribution. Individual glommits roam about the layer. Darkened glommits signify game plays where the level was completed successfully. GLOM:Information Agglomerates Total GamePlays by Day Fig.6-12: This graph illustrates the total game plays ~BLITZ 350 has received on a 20 daily basis in the forty day period since it was posted. The early swell around 7 coincides with appearing on 300 Zday .50 SBLITZ www.gamelan.com. Note the even decay following. large peak on day 33 .The 150 and then on day 39 coincide with postings on 100., www.jars.com and Swww.happypuppy.com. q 0 1 3 5 7 9 11 13 15 17 19 21 23 25 27 29 31 33 35 37 39 information architect is not necessarily a stockbroker and vice versa. However, an information architect possesses the skills necessary to successfully present the information that a stockbroker knows to ask for when it comes to stock and bonds. The information designer is given a set of raw data pertaining to securities: yield percentages, the number of stocks traded in a day, the closing price of a stock, the change in price between that day's close and the previous day's close, the price/earnings ration, the stock's highest and lowest prices during the previous 52 weeks, the dividend and finally the stock's highest and lowest prices of the day. The information designer is given a set of raw data pertaining to securities: yield percentages, the number of stocks traded in a day, the closing price of a stock, the change in price between that day's close and the previous day's close, the price/earnings ration, the stock's highest and lowest prices during the previous 52 weeks, the dividend and finally the stock's highest and lowest prices of the day. An optimal approach to determining the most appropriate axes for the problem at hand is for the designer and the expert to work together. Ideally, the designer should plan to spend at least a week in a purely observational role, seeing how the expert deals with their information flow. At the end of the observational period the designer should sit down with the expert, compare notes and in this manner determine the best axes to use in the GLOM representation. GLOM:Information Agglomerates 6.3 Implementation: BLITZGLOM This section of the thesis describes the work-in-progress implementation of the second half of the thesis: the BLITZGLOM visualization. BLITZGLOM is conceived as a real-time, interactive interface to the data warehoused in the Microsoft Access database generated from the reports of those who have played BLITZ. As such, BLITZGLOM represents the state-of-the-art in GLOM representations as of this writing. This section describes the functionality of BLITZGLOM and its unique characteristics in contrast to extant GLOM systems. Specific mappings are introduced and described. 6.3.1 The Hull BLITZGLOM is unique among existing GLOM representations in both its underlying architecture and surface characteristics. We are involved in a continuous process of refinement when it comes to the issue of glommit figuration. Initial systems, best represented by the Gradus project, proposed that the glommit be defined as two-dimensional text in a threedimensional environment. The Munsell GLOM used a different stratagem, pointing towards an increased level of abstraction. In the Munsell GLOM individual glommits were rendered as colored cubes. These cubes exhibited no external markings and offered no extended information as a part of their geometry. Later GLOMS, like the Tribune project and StockGLOM extended this approach in the two-dimensional realm by using a scaled-down version of the original content-such as a photograph or a text piece-as the glommit. In situations where this approach was not advisable or even possible, call-outs were used instead when the user moused over or clicked to select a particular glommit. An alternative approach is move away from abstraction in favor of increasingly representational forms. This was first attempted in earnest with the DataBloom prototype. With BLITZGLOM the emphasis is on performance and economy of form. BLITZGLOM is designed to run under TGS'V3Space control in the Visual Basic environment on a Pentium Pro 200Mhz PC with hardware 3D graphics acceleration. In terms of performance, this configuration is several orders of magnitude faster than anything running under current Java technologies on the same machine. As such, certain limitations previously encountered are rendered irrelevant while others require re-evalua- GLOM:InformationAgglomerates tion. Nonetheless, a PC is not an SGI Octane. In order to guarantee performance and maintain a decent frame rate, it proved necessary to carefully plan our approach. In order to guarantee performance, we simplified the underlying geometry of the representation. In the BLITZGLOM system, the glommit is made Fig.6-13: This graph shows the strong corellation between the number of shots fired and bad- dies killed. It may be an expected 0.0 relationship, but from this we * 70 know that players are not wasting their time shooting at random targets (or missing much). O+t adskle 0.50 0.30 0 20 0.10 0.01 3 5 7 9 11 13' 15 '17 '19. 21 23 25 '27 29 31' 3 35 37 39 Average Percentage of Level Penetration by Day 1 Ths graph 00Fig.6-13: 0 g shows that over time those who play BLITZ are on average getting no closer to the goal. This is true in .90~ 0.8o 0.70 spirt ~~ ~ .~. ~:over 4. of the** wi..de variation in number of game plays the period of the sample. Perhaps it is time to -O" 0.50 make the level i hisistru just a little thegoa. 0.40 0 0 . 40 easier. ..... 30 0 20 0.10 0.00 1 3 5 7 GLOM:Information Agglomerates 9 11 13 15 17 up of only two polygons. This dramatically simplified form precludes geometry-based representation like the original DataBloom. However, the gains in performance allow us to enhance the animated characteristics of the glommit to create a much more lifelike feel to the GLOM. In order to maintain some level of perceived complexity, we turned to texture mapAverage Duration of Game in Seconds by Day -~ 1400.00- 1200.00 1000.00 800.00 500.00 400.00 200.00 0.00 1 3 5 7 9 11 13 15 17 19 21 23 25 27 29 31 33 35 37 39 Average Score in Points by Day 25000.00 20000 .00 Fig.6-14: These two graphs show the life of a bug in BLITZ. Around day 5 we realized that the timer and score were not resetting after every game, hence the huge spike. Although telling, these graphs are not as useful as the BLITZGLOM system in allowing the user to access information about an individual game play. 15000.00 10000.00 5000.00 0.00 3 5 7 9 11 13 15 GLOM:InformationAgglomerates 17 19 21 23 25 27 29 31 33 35 37 39 ping. Affordable hardware acceleration directly addresses texture mapping which allows us to use it prudently in our designs. Each glommit in BLITZGLOM, when selected is texture mapped with the information specific to it. This arrangement allows us to leave the majority of the glommits unmapped. When they are distant from the user or when they are not picked the glommits are not mapped. This arrangement increases performance in the rendering pipeline. With BLITZGLOM we introduce a modified version of the DataBloom. Increasingly abstracted, this DataBloom keeps the functional and organizational characteristics of the original while making no attempt to simulate a physical flower. When the user clicks on a particular glommit, the camera zooms in to focus on it. The glommit fills approximately sixty percent of the screen and is texture mapped with the information that is specific to that glommit. An icon on the surface of the glommit allows the user to click to summon aliases of all other glommits associated with the original, i.e. that player's entire game play history. These copies are summoned and fall into place surrounding the original glommit which remains in the center. The satellite glommits are linked to the original by thin lines and are distributed around the original according to normalization against the high score in the system. For example, if the majority of the player's scores fall in the range of 0.2-0.5 of the system high score, then the outlying "petals" will be distributed between the 2:30 and 6:00 positions. 6.4 The Layers The BLITZGLOM is organized into a series of layers to facilitate comprehension of trends in the data. Each of these implicit cylindrical divisions is populated with the series of glommits that fall between the bounds imposed by this division. For example, if the vertical axis was assigned to be time, a natural division might be a twenty-four hour period. Under this division, a single layer would comprise the data for a single day. Individual glommits signify a single game play. Within the petri-dish layer, glommits roam about according to a set of deterministic behaviors. The quality of the motion serves to emphasize an assigned characteristic. In the StockGLOM system, increased activity was mapped to the volatility of an individual security. In BLITZGLOM, two candidate mappings are the GLOM:Information Agglomerates "freshness" of a particular game play, i.e. how recently that play was entered in the system, and how close that play came to the system-wide high score. High scores and level completions are marked by hue, their age by decreased saturation. The user is able to specify the granularity of the division between the layers of the BLITZGLOM. Instead of considering an entire day's worth of data, the user might choose to consider the data from a morning. In this way, each layer might comprise the game plays from only a few hours. The user is able to determine the extent to which the layers are separated or compressed. This allows the user to shift the focus between a particular slice of the data and the overall form of the body of data. 6.5 The Axes The axes in the BLITZGLOM system can be assigned by the user. Initially, the vertical axis is set to date: the earliest game plays are distributed among the bottom levels of the shape. Unlike earlier GLOMS, the horizontal and depth axes are not assigned by default. Work with Gradus and other early prototypes suggest that not only is it difficult to remain oriented in a three-dimensional environment organized in this manner, but that issues of occlusion make it difficult to appreciate the distribution. BLITZGLOM avoids this difficulty by leaving organization within a layer until later. At any time, the user may choose to focus in on a particular layer. The camera shifts to a position directly above the chosen layer. All other layers fade out through increased transparency. Even though the individual pieces of geometry that make up the layer is three-dimensional, the user is presented with a two-dimensional view of the layer. At this point the user might choose to distribute the individual glommits in a layer in any of two ways. First, glommits can be distributed in a radial manner. Similar to the scheme used in the DataBloom models, this distribution results in glommits being positioned between noon and midnight on the virtual clock face of the BLITZGLOM layer. The second way in which the glommits can be organized is by distance from the center of the layer. Those glommits that are most "fit"are closest to the center, while others move further away. We are currently developing the BLITZGLOM system. The underlying GLOM:Information Agglomerates technology is already in place (see Fig. 6-15). We have successfully run prototype versions of BLITZGLOM with 10-20,000 glommits in realtime. As we proceed, it is with the utmost confidence that through the development of the BLITZGLOM we will advance our study of organic architecture and identify new models and mechanisms for future visualizations. GLOM:InformationAgglomerates Fig.6-15: A view of the future. Screenshot from prototype implementations of BLITZGLOM, the GLOM representation for the data generated by and collected for the BLITZ game. In this shot you see 10,000 individual transparent, pickable Glommits. The user can manipulate the GLOM and the Glommits in real time on a Pentium Pro 200 PC. GLOM:Information Agglomerates 7 Conclusion 7.1 Summary In this thesis, we have introduced GLOMS: data visualization systems that utilize an organic information architecture as a means to structuring an interface to arbitrarily-sized databases. We have presented specific prototype GLOM implementations that move beyond the traditional notion of alphanumeric representation for quantitative information. These prototypes provide intuitive, interactive visual interfaces to underlying data sets. These GLOMS leverage off the "picture superiority effect." (Paivio, 1969) Paivio's results demonstrate that "pictures are remembered better than words; words for which subjects imagine referents are better remembered than words studied without such coding.. .and mnemonic devices employing imagery can produce dramatic effects on retention." (Roediger III, 1987) In addition, GLOMS incorporate the components of imagerybased mnemonics stressed by professional mnemonists, which are that the images should be interactive in nature and unusual rather than common. (Lorayne, 1974) In this thesis, we have also developed a new database infrastructure to support the collection of data from users around the world. We have presented BLITZ, the web-based Java game that interfaces with the database server to provide information for visualization. We have also described and begun the implementation of BLITZGLOM, a GLOM visualization for the data collected from BLITZ. In particular, we have presented early work on a series of seminal GLOM GLOM:Information Agglomerates prototypes: Gradus, Munsell, the Chicago Tribune project and StockGLOM. These prototypes were developed with Maeda and others over the term of thesis research. In all of these projects, special emphasis has been placed on the articulation of realistic motion and the relationship of the atomic unit of representation to the agglomerated whole. With Gradus we introduced the concept of subjective distortion. The individual words of the English language were mapped along three axes and subsequently packed. The process of packing, while introducing a distortion to the plot, resulted in a much more memorable and unusual external form. The result of selecting the particular axes of organization also demonstrated the ability of a form to indicate the historical characteristics of a set of data. Gradus also demonstrated the advantages for legibility of constraining two-dimensional geometry in an orthogonal orientation to the implicit spherical division of a three-dimensional environment. Gradus introduced the idea of spatio-distributed aliased indexing through its thesaurus function. Importantly, the success of Gradus demonstrates the effectiveness of GLOM techniques for visualizing a database of prose. The Munsell project introduced new generalized methodologies for the meaningful distortion of data sets: theVector Slide.This technique utilizes a custom voxel-based algorithm for the efficient creation of non-perforated agglomerated masses. An innovative technique for the minimization of occlusion-Inclusive Transparency-was proposed. This technique allows for the efficient examination of the occluded components of an agglomerated mass. The Munsell project illustrates the viability of GLOM techniques for visualizing a data set of color coordinates. The Tribune initiative introduced the concept of the single-dimension GLOM representation. Algorithms developed for this technique organize the component information units into stacked, stratified layers according to relevancy. This project also established the effective limitation of utilizing iconic representations of photographic assets in a GLOM representation. Here we introduced the idea of quantified thematic axes of organization for GLOM systems. This project established the efficacy of glomming techniques for databases of multimedia assets along with the need for effective glomming techniques designed for small-scale (less than GLOM:Information Agglomerates 100 data point) data sets. The final prototype system, StockGLOM, presented a new technique for introducing natural motion and cohesion into a GLOM system: Autonomous Agglomeration. This algorithm, inspired by cellular autonoma, gives the atomic units of representation in a GLOM system the ability to roam about the environment according to a set of rules with the goal of unified cohesion. StockGLOM introduced the concept of honest system dynamics: the refinement of glomming techniques to reflect the subjective distortion they introduce to the databases they represent. StockGLOM further articulates the notion of an organic subdivision within agglomerated masses. To this end, a modified Voronoi/Delaunay triangulation algorithm was developed. StockGLOM establishes the viability of glomming techniques for stock-market data. This thesis presents the DataBloom, a highly representational atomic unit of representation-Glommit-for use in GLOM system. Based on a physical flower, DataBlooms demonstrate the advantage and limitations of referential visualizations. User feedback suggests that in utilizing this approach, the designer must be prepared to provide the ersatz model with an extensive inventory of characteristics from its physical counterpart. This inventory serves to satisfy the user's sense of familiarity and expectation concerning the original and does not necessarily contribute to the success of the GLOM representation. Nonetheless, the DataBloom Glommit demonstrated an ability to embody "physically" at least triple the number of informational dimensions previous Glommits were. A networked database system was produced to facilitate the background calculations necessary to provide for the GLOM representations that lie on top of it. This system was integrated with the web-based Java game BLITZ-created for this thesis-in order to collect a controlled set of data for future GLOM visualization implementations. BLITZ integrated essential aspects of successful legacy arcade and home system games. BLITZ enjoys persistent success and is identified by independent sources to be an innovative example of the potential of the Java language. Finally, this thesis describes and begins the implementation of a next-gen- GLOM:Information Agglomerates eration GLOM system: BLITZGLOM. Based on the data generated by BLITZ, BLITZGLOM introduces a revision of the DataBloom which incorporates increasingly abstracted dynamics and appearance. This revision is a response to the limitations of DataBloom representations identified in earlier prototypes. In summary, the methods and forms identified and implemented through the research and development phase of the thesis serve to create a solid foundation for future implementations of organic information display. We have identified and formalized a series of techniques that can be utilized to create effective and communicative visual representations for quantitative information. 7.2 Future Directions The goal of the process of identification recorded in previous sections of this thesis is the creation of visualizations that provide the user with a positive subjective experience. Future goals include the verification of the supposition that GLOM visualizations can afford both a more efficient method of representing information along with a more positive subjective user experience. We hope to substantiate this claim through the design of experiments that challenge the user to complete information retrieval tasks using traditional and GLOM techniques of information visualization. In addition, we would like to identify metrics by which the user's subjective experience could be meaningfully quantified. Finally, it is our intention to continue to identify new techniques for representing natural motion and progression to an agglomerated state. We have initiated consideration of annealing techniques as well as more elaborate "artificial intelligence" algorithms for Glommits based on insects and flocking species. We will continue to test our techniques in new realms of information. Of particular interest are databases of human interaction. GLOM:Information Agglomerates Appendix A: Interview with a BLITZ Player A-I: Introduction Noah's father, Ron McNeil, stopped me one day at the office to mention that his son had become a "big fan" of BLITZ and was playing the game on a regular basis. This was a Tuesday. At the time, Noah was making routine visits on Wednesdays to the lab to see his father and participate in an experiment conducted by the members of the Epistemology and Learning group under Mitch Resnick's aegis. I wondered to Ron if he would give his son permission to participate in an interview with me concerning his impressions of BLITZ. Ron agreed, and the next day I met with nine year-old Noah. When Noah arrived, I did not know his age. From his appearance, he seemed to be between eleven and twelve years old. I was surprised to find out he was only nine. My goal in interviewing Noah was to secure an impression of the game from someone who a. had not been involved in the original development, and b. was representative of my target audience. These impressions would be used to improve particular characteristics of BLITZ with an eye to attracting a greater number of regular players. Noah fit the bill. I was struck by Noah's ease and familiarity with the underlying technologies involved. Dressed in a broadly striped blue and red shirt, jeans and skater's shoes, Noah talked easily about internet con- GLOM:Information Agglomerates nections, gaming conventions and processor speeds. When he encountered a concept he was unfamiliar with, Noah was not disheartened. Instead, he took these new ideas in stride adding them easily to his already impressive knowledge of the digital world. What follows is a transcript of the first half our conversation held at 5:00PM on Wednesday, April 22, 1998. The second half of our interview concerned the level editor and the design of a custom level for BLITZ. This level was produced with slight modification, and is available for play from the www.glom.net site. GLOM:Information Agglomerates A-I: Transcript MG: How did you find the game BLITZ? NM: Um, because my dad just told me. MG: How long ago did you firstplay the game? NM: About two weeks ago. Oh, see uh usually whenever I get in there without killing those two first it crashes right there. MG: Really, can you show me? NM: Ok. Well see when I kill them from there it doesn't happen. Here watch this. Usually I am standing right there and the guys pop out. They keep on popping out and then, just, it will just stop. MG: How do you work around that? NM: Here I'll show you. I kill them from the top. MG: The computer you play this on at home, does it have a modem? How do you connect to the Internet? NM: I just go on the Internet and I have a bookmark and I am just sort of there. MG: Do you have a modem? NM:Yeah. MG: How long does it take to load the game? NM: Um, I don't know maybe thirty seconds. I don't know. MG: Really? So it is a 56.6k modem? NM: I'm not sure it is my sister's modem. MG: But it does not take too long to load? NM: No. See this is how I fix it [the bug] MG: Didyou know you could turn the turret by itself? NM:Yeah, you do shift and then one of these, but it's kind of hard to get it back to normal. MG: Didyou know if you hit "c"the turret will return to its normalposition? NM: It does? MG:Yes. NM: Oh, so I am just going to go here. Shall I hit "c"? Ha, that's cool. MG: Just so you know. And you know you can turn the sound on and off with NM: Oh, I didn't know that actually. Nobody really minds. MG: No? That's great because aroundhere I can'tplay with the sound on all the time. NM: See that's how I fix it. GLOM:Information Agglomerates MG: And then it doesn't usually crash?What type of machine do you play BLITZ on? NM: I play on a PC. MG: Do you know which processorit has? NM: The processor? MG: Does it run as quickly as this one [300mHz Pentium II]? NM: It's just a little bit slower. MG: What other types of games do you play these days? NM: I don't know. I have some games like Lucas Arts. MG: How about things like Nintendo 64 or things like that? NM: No, I don't really like video games. MG: Really? But you have fun playing BLITZ sometimes? NM: I once got around where those four barreled things are, but I haven't got past that. I died. MG: How would you rate the difficulty of this level? Is it too hard, too easy? NM: I like it the way it is because it's a challenge. MG: If it was easier it might be too easy? NM: Yeah I guess. It could be a little easier when you got around there, but I kind of like it that way because... MG: Is there anything about the way I have set up the interface,forexample there it says "goal",that is confusing, or does it all make sense? NM: It makes sense pretty much. The goal is, I'm pretty sure that's how many people are destroyed or something. Or how far...what I want to know is there an end to this or is it once you've destroyed everybody is that the end? MG: No, what the goal is showingyou is how close you are to the end. So there really is an end. If you want I can make you invincible andyou go through the level? Do you want me to do that? NM: Ok, I'll try. MG: So don't look. [I press the secret key combination] Ok, now you can just go and nothing can shoot you. You will still have to shoot things but... Ok, so it was not clear that there is an end to the level? NM: No it wasn't. I thought it was just like how many guys you killed. I thought that because when you go through the maze it can be both. Because when you go through the maze you kill more guys and when you go through the maze you are getting farther. MG: That's true. So how old areyou? NM: I'm nine. GLOM:InformationAgglomerates Fig.A-1: Noah McNeil designs a level using the level editor created by Melissa Hao. The level Noah created, with only slight modifications, was included withthe general distibution of BLITZ. MG:You're nine? Do you know what type of games other people your age are playing? NM: They like video games. That's not really my type though. I don't know.You hold little thingies and they're...I think it is more interesting to have a screen in front of you and then...um... MG:You mean the controllersfor Nintendo? NM:Yeah. MG: So you prefer the keyboard? NM:Yeah. MG: A lot of games that are really popular right now are like Doom and Quake: 3D... NM: I tried to load Quake. I like Quake pretty much but I have never played it with the enemies because the demo version you get has no guys in it. MG: Many of the graphics in BLITZ are based on games from the 80's. It is definitely an older style game. NM: Can you fall in those? [crater from exploded turret] MG: No. NM: Hey you know what? At the end you should have one of them at the end that you just go in and then it drops you down to the second level or something, or is this the only level? MG: That's a cool idea. Right now this is the only level, but there is no reason there can't be more levels. There is actually a level editor that I put out there so if GLOM:Information Agglomerates anyone wants to design a level then I can include it in the game. NM: That's cool. MG: So Iput this game on the web and lots of different people play it all the time and I collect their scores and other information.Would it be interesting to you to a. play againstsome of those other people.... NM:Yeah, if you could do a multi-player mission or something. MG: How would you do that?You mean you would play at the same time? NM:Yeah.You would start at, say, different ends. And if one person killed the other person then they would win. But then you should have the invincible not work, and the green guys would just be interference. MG: What would the main goal be? NM: The main goal would be to destroy the other person playing and the other people, but I guess they would be just interference. But you should leave out the big guys because they are too tough. MG: The originalidea was that two people would be racingto get to a common goal. [Noah gets to the end]. Does it change your attitude now thatyou have reached the end? NM: I think it, now that I know where to go it is sort of different. MG: More of a challenge? NM:Yeah. Well, now that I know where to go, there are some distractions, like the place where you go up it doesn't really lead anywhere. I like that. I think what you could do is have dead ends and a place where you would go down a column and then there would be a dead end. MG: So what do you like most about school? NM: I think.. .I like Phys. Ed. a lot, that's my favorite class. MG: So what grade are you in now? NM: Third grade. Sometimes we played basketball, sometimes we play medical wars...and also about this: what would be nice would be if you could have a save game or just pause it or something. Usually what they do is you hit "escape" and then you load or save. MG: Why would it be cool to have thatfeature? NM: I don't know. MG: So what do you think of math class? NM: Oh, I have an advanced math class. We are doing a lot of thinking problems. And sometimes we do stuff that is like pre-algebra almost. In regular math class we are learning fractions. That's where I usually die. MG: So what is your general strategy when playing BLITZ? NM: My strategy is don't destroy what you don't have to. GLOM:InformationAgglomerates MG: Ok, how come? NM: Because it could be just sort of a trap that kills you. I don't have to destroy them because they can't hurt me if I don't blow up those blocks. MG: Now that you know that the goal of the game is to get to the end as quickly as possible, does that change how you might play? How would you try to get as far as possible as quickly as you can? NM: As far as possible? I would just sort of...I don't know. I would find the most possible squares to be in that are the best. Say I want to destroy that I usually get in this square and slant myself so it can't shoot at me. MG: I was thinking of adding afeature that would indicate on the level where each player dies. I think everyone is dying aroundhere, like you saidyou died down here a lot. You would see lots of little gravestones... NM: Or you could see rubble or something where the dead tanks were. MG: Is it interesting to you that lots of people could be playing this game all aroundthe world, or is it more interestingto you that it is just you playing the game? NM: I don't know. I think that is interesting in a way. Um... MG:Are you interestedto know how you perform compared to those other people in terms of your scores and times? NM: Sort of, but not really. I think my personal score is my score. I don't really mind if other people know my score, it's just.. .I don't know. MG: The focus is not so much on the fact that otherpeople know your score as much as it is you would be able to compareyour scores and times againstthose of other players... NM: Oh, you mean like a high-scores table? MG: Exactly. I could have an area that could show all the high scores. Would that be interesting? NM:Yeah. MG: So how did you figure out how to play the game without making it crash? NM: I just said, well up here there's two guys there so I can... MG:You shot them from up there? NM:Yeah. MG: And then itjust didn't crash. That's pretty cool. What do you think of the sound effects? NM: I like the sound effects. MG: [game speaks] Do you ever wonder who that guy is? NM: He sounds kind of like a German laugh. Um.... MG: What do you think of the graphicsbecause they are very different in some ways than many new games... GLOM:InformationAgglomerates NM:You could make obstacles of some sort, like mounds you could move around or holes you could fall in or something. Or at the end-right in the middle of that checkered area-that could be like a red spot that is black and the bad guys come out of it and once you've destroyed them I guess you are supposed to drop in. Then you drop to the next level. Or you could make mines. You could make an "x" and then if you ran over it... MG:You blew up as opposed to the medical one... NM: You could do both. MG: Do the graphics as they exist now, do they strikeyou as differentfrom other games that you have played or not really? NM: I think so because they are mostly squares and you are looking down at you and.. .um... I don't know usually you are the person. MG: In 3D you mean? NM: Right, in 3D you are the person. MG: How does this compare to that in your opinion? NM: I don't know, just different. MG: It doesn't botheryou? NM: No. MG: What do you think about the way the tank moves? NM: Um... MG: Hey, you are getting prettyfar [in the level]. NM: Rats, he noticed me. Also, maybe if the enemy learned how to destroy walls or something. Say if you shot at some walls and they noticed that or if they learned how to follow you like in the game Descent. In Descent the enemies learn how to follow you if you run away from them. MG: I agree. What do you think of the idea of somehow recording the path that everyone took and over time it changed the characterof the level. In the same way that in a house if everyone walks the same way... NM: Well if it changed almost every time depending on where you go. If you die there or if you are successful there then the next level will be the same except there are different traps and different paths. MG: Ok, but I mean take this level for example. Perhaps the next time you played it there would be tire treads where otherpeople went. NM: Or you make dirt mounds that made you or the enemy slow. Or you could make the bottom more realistic, they could be dirt.You could make it terrain or leave it the way it is. I don't know. MG: Would it be interestingto see where other people have driven through the level before you? GLOM:Information Agglomerates 100 NM:Yeah. MG: Would you go that way, or would you go some other way? NM: Well if I saw them come to an end then no, but... MG: I guess that's about right.Thanks for your time Noah I really appreciateit. NM: No problem. After this conversation Noah was introduced to the level editor. He went on to design his own level which was only slightly modified and then posted to the http://www.glom.net site as an alternative level for players to attempt. A player can select Noah's level by clicking through the link [Noah's level]. In the weeks since this level was posted, it has received a healthy number of plays. GLOM:Information Agglomerates 101 date time score duration baddies hits shots ip address of player id# Appendix B: Game Statistics In the following pages the reader will find a subset of the data collected during the forty days preceeding the submission of this thesis. The data is complete except for the omission of level completion codes and ending health percentages. Below is an explanation of the column headings. date: time: score: duration: baddies: hits: Shots: ip: id#: the date the score was recorded. time of day. the score, in points, the player was awarded. the duration, in seconds, the game lasted. total number of bad guys the player managed to destroy. This count includes stationary bunker emplacements as well as roaming enemies. count of successful hits the player made with their shots. A successful hit includes any shot that strikes and enemy or Destructo-wall. total number of shots a player has made during the game. the internet protocol address of the player. the unique score id for the particular game play. GLOM:InformationAgglomerates 102 date time score duration baddies hits shots 980401 980401 980401 980401 980401 980401 980401 980401 980401 980401 980401 980401 980401 980401 980401 980401 980401 980401 980401 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 12:46:25 P4 1:37:31 P4 2:00:17 P4 2:02:452M 2:06:592M 5:17:1724 5:17:2324 5:17:5824 5:18:53R4 5:20:07PM 5:21:222M 5:23:542M 5:29:5724 5:33:27 5:46:172M 6:22:582M 6:24:132M 6:25:4724 6:28:1924 1:03:33AM 3:19:14AM 4:21:32AM 8:12:44AM 8:15:30AM 8:25:09AM 8:30:17AM 8:37:32AM 8:41:04AM 8:44:20 AM 9:11:06AM 9:14:52AM 9:18:17AM 9:55:40AM 10:03:51 AM 10:07:40 AM 10:36:52 AM 10:38:14 AM 11:16:57 AM 11:28:38 AM 11:31:49 AM 1:10:4224 1:11:532M 2:29:082M 3:02:542M 4:06:352M 4:07:082M 4:07:392M 4:08:082M 4:11:4024 4:12:4224 4:13:212M 4:13:392M 4:14:1324 4:14:372M 4:15:04 4:22:432M 4:23:102M 4:28:47 4:33:452M 4:38:4324 4:42:392M 4:44:142M 4:48:512M 4:52:5824 4:55:082M 4:59:352M 5:08:54FM 5:09:27 5:21:08 4 5:28:342M 5:36:572M 5:40:322M 5:44:2724 5:50:0624 5:57:17PM 6:00:23PM 7:47:212M 8:00:032M 8:01:312M 8:08:022M 8:08:5424 8:20:262M 9:50:172M 9:59:0224 11:29:032M 11:34:412M 11:46:532M 11:53:392M 1:13:31AM 1:17:08AM 1±19:02 AM 1:20:44 AM 1:21:16AM 1:23:31AM 1:26:53AM 1:28:31AM 1:29:04AM 1:30:56AM 1:31:15AM 1:34:19M 1:35:06AM 1:36:22AM 1:39:23AM 1:41:02AM 3500 32050 0 0 100 0 0 0 0 1200 5050 11000 32100 32600 5450 1200 2500 5200 9550 1350 250 1250 3850 9550 0 0 2900 0 0 650 0 200 0 1000 0 200 0 0 2800 0 1100 250 14700 200 1800 1800 2000 2500 250 500 78 605 23 8 15 75 7 5 24 50 58 138 338 47 99 56 56 73 115 38 85 171 104 153 7 9 65 2 3 131 5 54 4 23 15 7 15 19 113 43 14 40 154 81 36 7 11 11 16 7 7 59 0 0 0 0 0 0 0 2 8 19 58 60 9 2 5 10 18 5 0 5 8 21 0 0 6 0 0 0 0 0 0 4 0 0 0 0 9 0 3 1 19 0 3 3 3 5 1 2 89 757 17 0 25 0 0 0 0 42 117 257 859 920 103 20 90 159 259 54 22 51 58 179 12 25 35 0 0 21 17 34 0 40 0 25 23 0 115 0 42 29 182 4 18 18 56 116 22 27 158 1840 17 6 24 14 4 0 0 182 374 773 2465 2560 287 79 192 319 547 123 27 73 613 1069 20 32 133 0 2 26 17 35 5 91 7 22 25 3 304 3 107 29 6 28 3 4 47 105 55 45 1000 23 6 64 0 500 500 250 500 0 1350 9400 11950 3400 3200 10100 4300 4550 8700 0 0 4200 20100 4350 7550 9400 16300 14150 10450 2 5 9 12 55 10 43 191 282 87 74 259 88 113 252 34 9 169 446 84 159 209 318 388 171 6 8 10 11 2 2 2 20 40 8 20 38 12 21 39 0 0 8 34 9 23 42 76 102 119 64 108 135 159 27 27 15 288 706 68 177 479 170 230 418 3 3 72 586 51 221 518 1030 1418 1654 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980402 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 FM M M M ip address of player id# glum.media.mit.edu/18.85.25.34 tunnel-nt-endpoint-2.media.nmit.e-u/18.85.25.3 kirby.media.mit.edu/18.85.21.34 glun.media.mit.edu/18.85.25.34 glum.media.nt.edu/18.85.25.34 loewy.media.mnit.edu/18.85.21.37 fay.media.mrit.edu/18.85.5.170 wireless-23.media.mit.edu/18.85.18.23 cooper.nedia.mit.edu/18.85.21.70 cooper.neidia.rit.edu/18.85.21.70 nsl.ratgut.cunV204.96.52.22 pinotnoir.media.rit.edu/18.85.16.104 cooper.nedlia.mit.edu±/18.85.21.70 cooper.media.mit.e-u/18.85.21.70 cooper.nedia.mit.edu/18.85.21.70 cooper.adia.it.edu/18.85.21.70 cooper.edia.miit.edu/18.85.21.70 cooper.nedia.mrit.edu/18.85.21.70 753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 787 788 789 790 791 792 793 794 796 797 798 800 802 803 804 805 806 807 117 ooper.media.mit.edu/18.85.21.70 808 117 166 229 254 65 65 39 1510 3854 140 458 1377 359 565 1200 19 20 211 2497 313 965 2151 4423 6041 6973 cooper.media.mit.edu/18.85.21.70 ooper.media.nit.edu/18.85.21.70 cooper.edia.mit.edi/18.85.21.70 cooper.media.mit.edu/18.85.21.70 cooper.nia. it.edu/18.85.21.70 cooper.media.mit.edu/18.85.21.70 wireless-89.nedia.nit.edu/18.85.18.89 cooper.nedia.mit.edu/18.85.21.70 cooper.media.±it.edu/18.85.21.70 diversions.nedia.mit.edu/18.85.8.235 diversions.media.m±it.edu/18.85.8.235 diversionm.edia.mit.edlu/18.85.8.235 diversio. divrosmedia.it.edu/18.85.8.235 diversions.edia.±it.edu/18.85.8.235 opr.nedia.mit.edu/18.85.21.70 cooper.media.mit.edu/18.85.21.70 wirles-23.mBlia.mit.edu/18.85.18.23 cooper.n±dia.mit.edu/18.85.21.70 cooper.media.rit.edu/18.85.21.70 cooper.nedia.ndt.edu/18.85.21.70 cooper.media.m±it.e-li/18.85.21.70 cooper.nedia.nit.edu/18.85.21.70 cooper.media.mit.edu/18.85.21.70 ooper.media.nit..tu/18.85.21.70 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 madia.mit.edu/18.85.8.235 500 6 2 27 27 frtiger .ndia.mtit.edu/18.85.21.72 834 38550 2000 24050 14500 10350 8950 29350 38650 2050 9650 27750 6550 22050 470 70 447 427 170 5369 387 287 106 130 394 179 206 185 192 42 222 17 32 51 76 82 101 147 19 187 2401 2492 621 2903 378 718 733 517 620 804 1455 135 1836 9823 10153 3462 11892 595 1135 2613 1637 2137 2695 5220 659 5743 cooper.media.mit.edlu/18.85.21.70 cooper.media.m±it.edu/18.85.21.70 frutiger.media.mit.edu/18.85.21.72 cooper.nedia.±it.edu/18.85.21.70 frutiger.media.mit.edu/18.85.21.72 frutiger.nedia.mdt.edu/18.85.21.72 frutiger.nedia.rit.edu/18.85.21.72 cooper.ndia.mit.edu/18.85.21.70 7 cooper.media.mit.edu/18.85.21. 0 cooper.n±dia.mit.edu/18.85.21.70 ±ooper.media.Rdt.edlu/18.85.21.70 kaze.nedia.mit.edu/18.85.5.79 oor.media.mit.edui/18.85.21.70 835 836 837 838 839 840 841 842 843 844 845 846 847 4950 98 198 1933 6018 cooper.n.dia.mit.edu/18.85.21.70 848 5250 15400 7150 35500 9500 6250 18500 5800 9050 34750 5100 8250 11950 85 450 152 93 276 98 481 116 168 384 88 240 333 212 54 226 114 251 129 96 142 160 312 173 331 127 2064 550 2213 1158 2405 1302 1082 1446 1651 3313 1741 3509 1370 6287 3231 6579 2828 7147 3073 5805 3405 3801 8823 4289 9792 7765 ooper.media.m±it.edu/18.85.21.70 kaze.media.mit.edu/18.85.5.79 cooper.media.mit.edu/18.85.21.70 frutiger.nedia.mit.edu/18.85.21.72 cooper.media.mit.edu/18.85.21.70 frutiger.nedia.mit.edu/18.85.21.72 kaze.n9dia.mit.edu/18.85.5.79 frutiger.media.mit.edu/18.85.21.72 frutiger.nedia.m±it.edu/18.85.21.72 cooper.adia.mit.edu/18.85.21.70 frutiger.media.mit.edu/18.85.21.72 cooper.media.mit.edu/18.85.21.70 kaze.nedia.mit.edlu/18.85.5.79 849 850 851 852 853 854 855 856 857 858 859 860 861 GLOM:Information Agglomerates 103 data tim. 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980403 980404 980404 980404 980404 980404 980404 980404 980404 980404 980404 980404 980404 980404 980404 980404 980404 980404 980404 980404 980404 980404 980405 980405 980405 980405 980405 980405 980405 980405 980405 980405 980405 980405 980405 980405 980405 980406 980406 980406 980406 980406 980406 980406 980406 980406 980406 980406 980406 980406 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 1:43:14 A84 1:48:31 AM 1:50:58AM 2:08:28AM 2:11:42AM 2:14:21AM 2:14:35AM 4:01:38AM 4:08:12AM 4:16:46AM 5:05:23AM 10:28:49 AM 11:20:44 AM 11:58:23 AM 12:26:232M 12:33:14 0M 12:34:05 8M 2:03:210M 3:21:250M 4:09:580M 4:11:58R4 4:14:350M 4:44:258M 5:58:38PM 10:08:48FM 10:18:04 0M 10:47:25 0M 10:51:27 0M 10:56:30 0M 10:57:288M 10:59:38 0M 11:00:560M 11:05:53 0M 11:09:10 0M 11:14:07 0M 2:05:16AM 2:07:46AM 2:13:56 3:27:40AM 3:59:38A84 5:40:33AM 8:19:27AM 3:07:540M 3:08:440M 4:39:400M 4:50:30R4 4:50:57EM 7:16:590M 7:24:550M 7:34:120M 8:06:180M 9:06:518M 9:55:5804 9:58:12EM 9:58:370M 10:38:39 04 12:11:48 0M 12:29:55 0M 12:43:46 AM 12:53:48 0M 1:00:370M 1:05:21 1:57:41AM 2:02:160M 6:15:300M 10:19:42 AM 11:49:02 AM 11:54:47 1:39:24FM 9:07:320M 9:09:060M 1:12:49AM 1:22:05084 1:37:31084 1:48:51AM 1:57:33 AM 4:15:32 AM 9:30:30 9:33:410M 9:34:26 AM 9:35:370M 9:36:41 AM 1:30:430M 10:42:45 FM 12:51:01 A84 12:51:32 AM 12:52:16 A86 12:53:59 AM 12:55:51 8M 12:57:32 AM 12:58:12 0M 1:01:22 0M 0M 11:30:11 11:30:37 0M 11:33:13 AM 11:37:14 0M AM 11:39:16 11:53:35 0M 11:57:57 086 12:00:17P4 12:05:09 0M 12:08:25 R4 12:09:21 2M 24 12:10:02 M M M M af --ar durtion haddies hit. =hat. in 7950 7950 24550 38250 14200 8000 9300 4400 9700 12300 50 5800 200 1800 10650 1800 2050 3000 1800 32500 5500 6400 1800 15650 600 7750 10800 5100 21700 6850 5100 7500 7950 4200 2400 4100 6750 12900 2500 26300 32100 100 0 0 300 0 0 3650 2000 1800 4950 50 29700 1100 0 3550 27800 13650 40200 30700 6250 25600 0 25650 25950 28150 14000 22400 39800 4100 7150 9400 15750 6500 27750 5550 5200 300 55200 100 1150 700 0 500 17150 600 3000 6750 6050 7450 1200 9100 150 0 0 600 3550 3400 0 3250 3000 3100 500 750 216 183 580 953 220 145 126 85 336 335 68 162 33 29 299 29 3318 155 28 682 93 78 46 28 22 115 42 94 424 50 115 123 255 53 44 89 135 354 16482 214 548 43 3 31 1286 14 11 6986 73 48 37 31 464 13 7 77 468 186 817 378 90 274 14 259 285 257 334 265 39 47 78 93 495 98 325 115 285 14 31 26 53 44 7 26 23 17 28 88 95 84 25 175 112 9 16 53 107 68 7 148 199 84 40 68 347 363 181 263 206 224 15 12 34 20 0 12 0 3 13 3 4 4 3 63 78 92 3 29 1 17 35 48 34 16 28 16 14 21 32 9 29 61 52 107 60 0 0 0 0 0 0 7 13 17 27 0 53 56 56 7 47 29 109 163 172 215 0 39 40 46 26 64 66 8 22 17 31 12 58 69 15 1 159 159 162 164 0 2 28 29 34 47 57 70 72 88 0 0 0 1 8 8 0 7 12 5 7 1 3683 3861 2006 2969 2051 2265 245 98 295 326 5 165 4 18 287 18 79 48 18 810 997 1118 18 175 6 173 283 406 484 123 250 179 257 316 274 94 250 713 437 1191 761 29 1 6 9 0 0 75 126 201 278 1 900 946 946 41 785 319 1444 2136 2332 2983 0 616 650 691 449 936 401 114 287 192 519 155 861 958 80 25 1526 1546 1618 1700 0 41 175 181 213 332 470 596 608 899 29 0 0 6 52 44 0 41 103 32 59 11 10815 11952 11203 17346 5090 5651 655 304 1570 1877 50 221 9 62 356 45 89 118 55 3597 3978 4300 30 131 16 372 480 796 2124 108 429 646 1283 1451 429 411 993 2279 899 3587 3135 33 1 27 54 0 0 127 237 366 522 12 2851 2891 2891 142 2757 829 5428 7048 7338 8564 1 1659 1378 1678 2570 4462 105 233 682 396 1809 413 3093 3438 240 35 3448 3499 3764 4050 7 44 14 35 130 400 727 998 1039 2001 118 0 6 70 257 364 0 148 184 99 187 39 cooper.nedia.mdit.edu/18.85.21.70 cooper.nlia.miet.eiu/18.85.21.70 kaze.nedia.mit.edu/18.85.5.79 kaze.nedia.rit.edu/18.85.5.79 frutiger.ndia. mit.edu/18.85.21.72 frutiger.nedia.mrit.edu/18.85.21.72 kaze.nedia.mit.edu/18.85.5.79 frutiger.nedia.mit.edu/18.85.21.72 frutiger.nedia.mit.edu/18.85.21.72 frutiger.nedia.mit.edu/18.85.21.72 glum.nudia.mit.edu/18.85.25.34 tunnel-nt-endpoint-2.nedia.mit.edu/18.85.25.3 frutiger.niia.mit.edu/18.85.21.72 frutiger.media.mit.edu/18.85.21.72 pinotnoir.media.mnit.edu/18.85.16.104 frutiger.nedia.oit.edu/18.85.21.72 boulet.media.miit.edu/18.85.17.102 wireless-86.nedia.mit.edu/18.85.18.86 frutiger.nedia.mit.ed±u/18.85.21.72 wireless-8.nedia.cit.edu/18.85.18.8 wireless-8.nedia.mit.edu/18.85.18.8 wireless-8.nedia.mit.edu/18.85.18.8 tschichold.media.mit.edu/18.85.21.71 tschichold.media.mit.edu/18.85.21.71 cooper.nodia.mit.edu/18.85.21.70 tschichold.media.rit.edu/18.85.21.71 tschichold.media.mit.edu/18.85.21.71 techichold.media.mit.edu/18.85.21.71 frutiger.media.mit.edu/18.85.21.72 cooperedia.it.edu/18.85.21.70 cooper.nedia.mit.edu/18.85.21.70 igarashi. media.mit.edu/18.85.21.69 igarashi. igarashi.nedia.mit.edu/18.85.21.69 cooper.nedia.mit.edu/18.85.21.70 frutiger.media.mit.edu/18.85.21.72 frutiger.ed4ia.mit.eiu/18.85.21.72 frutiger.media.mnit.edu/18.85.21.72 tschichold.media.mit.edu/18.85.21.71 frutiger.media.mit.edlu/18.85.21.72 kaze.redia.mit.edu/18.85.5.79 glum.madia.mit.edu/18.85.25.34 glum.media.rt.e-lu/18.85.25.34 glum.mnedia.mit.ed/18.85.25.34 ts8-141.intercall.can/207.77.26.141 GLOM:Information Agglomerates addra= . .1-vr meda.mit.edu/18.85.21.69 ids 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 mckay.media.it.edu/18.85.21.80 nekay.nedia.cit.ed.u/18.85.21.80 mckay.media.mit.ed.u/18.85.21.80 nkay.nedia.cmit.edlu/18.85.21.80 erkay.media.mit.ed.u/18.85.21.80 nckay.nedia.mit.edu/18.85.21.80 hatchet.nedia.mit.edu/18.85.17.109 kirby.media.mdt.edu/18.85.21.34 kirby.nedia.mit.edu/18.85.21.34 kirby..edia.mit.edu/18.85.21.34 hatchet.media.mit.e4u/18.85.17.109 wireless-83.me&a.mit.edub/18.85.18. 83 wireless-8.nedia.mrit. edu/18. 85.18.8 wireles-8.media.moit.edu/18.85.18.8 wireless-8.media.mit.ed4u/18.85.18.8 wireles-8. media.mit.edlu/18.85.18.8 wireless-8.media.mnit.edu/18.85.18.8 frutiger.niedia.mit.edub/18.85.21.72 frutiger.media.miit.edu/18.85.21.72 wireless-8.media.mit.edu/18.85.18.8 nckay.media.mi±t.edu/18.85.21.80 cooper.nedia.mit.edu/18.85.21.70 cooper.media.miit.edu/18.85.21.70 nckay.media.mit.edu/18.85.21.80 igarashi.media.mit.edu/18.85.21.69 igarashi.mdia. mit.edlu/18.85.21.69 nrekay.m9ea.nit.edu/18.85.21.80 erkay.nedia.mit.edu/18.85.21.80 frutiger.media.mit.edu/18.85.21.72 frutiger.nadia.mit.edu/18.85.21.72 frutiger.mdia.mit.edui/18.85.21.72 dwe.netareatios.ocan/204.29.234.61 g1n.media.mit.edu/18.85.25.34 frutiger.media.mit.edu/18.85.21.72 frutiger.media.mit.edu/18.85.21.72 frutiger.nedia.mit.edu/18.85.21.72 frutiger.nedia.mit.edu/18.85.21.72 eisner.media.mit. ed/18.85.21.79 tschichold.ndia.mit.edu/18.85.21.71 tschichold.media.mit.ed±u/18.85.21.71 tschichold.ndia rit. eiu/18. 85.21.71 tschichold.nedia.it. ed/18.85.21.71 tschichold.media.mcit.edu/18.85.21.71 tschichold.media.mit.edu/18.85.21.71 tschkichold.nedia.it.edu/18.85.21.71 tachichold.nedia.it.du/18.85.21.71 tschichold.nedia.oit.edu/18.85.21.71 scarface.nedia.mit.edu/18.85.40.34 towerhill.media.nat.edu/18.85.16.112 toby.media.mit.edu/18.85.5.89 dynamic-19.media.mit.edu/18.85.12.147 dynamic-19.nedia.mit.edu/18.85.12.147 dikdik.nedia.nmit.edu/18.85.23.37 queenway.nedia.mit.edu/18.85.16.116 195.171.37.155/195.171.37.155 grait.media.it.edu/18.85.16.38 nail-gu.media.mit.edu/18.85.1.24 nail-gun.nedia.dit.edu±/18.85.1.24 turquoise.media.mit.edu/18.85.11.170 104 id# date time score duration baddies hits shots ip address of 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 12:14:25 FM 12:16:47 2M 12:19:03 12:19:072M 12:24:37 FM 12:25:242M 12:30:4724 12:30:51 12:31:16 PM 12:31:56 PM 12:41:20PM 1:10:3724 1:11:32PM 1:27:17 1:29:282M 1:34:152M 1:35:16EM 1:38:0024 1:41:392M 1:43:0324 1:43:282M 1:44:092M 1:44:30 1:45:11OM 1:46:40O4 1:46:562M 1:48:27OM 1:50:40 1:51:46 1:51:53PM 1:52:32 2:37:39M 2:39:41R4 3:17:47PM 3:30:02R4 3:35:46 3:36:00FM 3:36:252M 3:38:202M 3:39:582M 3:40:04R4 3:40:292M 3:42:122M 3:55:352M 4:09:09 4:10:15FM 4:12:19EM 4:15:28PM 4:48:292M 5:02:57EM 5:31:29PM 6:13:04R4 6:14:19EM 6:14:352M 6:15:52 6:20:4724 6:21:33R4 6:23:05R4 6:26:20 6:29:202M 6:37:302M 6:44:15EM 6:46:22EM 6:47:58EM 6:48:37PM 6:50:072M 6:51:28 6:52:36PM 6:52:582M 6:54:202M 6:55:492M 6:58:2124 7:00:1524 7:02:502M 7:03:4424 7:04:47FM 7:05:33 7:15:3724 7:18:00 7:20:01EM 7:22:39PM 8:01:492M 8:02:55PM 8:04:292M 8±06:05FM 8:07:48R4 8:08:30PM 8:18:28FM 8:19:322M 8:20:172M 8:22:15PM 8:22:302M 8:23:42EM 8:27:352M 8:27±42EM 8:34:50 8:57:30 8:58:45 9:32:542M 9:37:452M 9:44:13 10:04:28 2M 10:06:29 FM 10:06:4424 3700 500 1800 3450 0 0 50 0 50 0 2050 150 150 4000 3000 0 3250 4250 0 157300 0 1450 3400 2000 3650 4050 2500 4750 3700 4450 6100 7350 11100 0 4000 5950 500 3750 600 450 3150 9300 8950 10450 950 4250 14900 7600 3050 8550 0 1250 1800 0 3150 50 750 800 6750 4600 8400 500 650 3300 600 3000 2250 2400 2500 4000 2700 2400 2950 4000 9550 3400 4850 4650 8650 5850 9200 2500 0 2650 13300 3050 750 0 3550 0 5050 7350 3950 850 900 9100 0 3050 3450 2650 3600 3050 3400 3550 112 112 138 145 48 21 147 11 131 26 141 83 39 165 70 25 85 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nekay.mndia.mit.edu/1 . 5.21.80 westham.media.mit. edu/18.85.16.53 gate04.nry.us. ihn.cc/198.133.22.21 joln-nuir.media.mit.edu/18.85.5.88 westhamnudia.mit. edu/18.85.16.53 gate04.ny.us.ihn.ccn/198.133.22.21 john-nuir.nedia.mit.edu/18.85.5.88 gate04.ny.us.ihn.<xan/198.133.22.21 gate05.ny.us.ihn.com/198.133.22.22 austin.ih cn.com/192.35.232.13 wstham.nedia.mit.edu/18.85.16.53 tachichold.nedia.mit.edlu/18.85.21.71 tschiclold.media.it.edu/18.85.21.71 tschichold.nedia.it.edu/18.85.21.71 co/198.133.22.37 gatelO.ny. us.hn.c cm/192.35.232.115 s05.autin.ihn. tschichold.nedia.it.edu/18.85.21.71 basquiat.nedia.mit.edlu/18.85.40.29 tschicold.nedia.nit.edu/18.85.21.71 207.92.110.134/207.92.110.134 tschichold.nedia.nit.edu/18.85.21.71 s05.austin.ihn.c/192.35.232.115 tschiclold.nedia.mint.edu/18.85.21.71 tschichold.media.nit.edu/18.85.21.71 tschichold.nedia.mit.edu/18.85.21.71 tschichnld.nediamit. edu/18.85.21.71 tschicold.nsedia.nit.edu/18.85.21.71 209.82.24.234/209.82.24.234 BUEBCK-315.MIT.EW/18.162.2.132 BLUEBC-3l5.MIT.EW/18.162.2.132 86 kgb.loc3.tandem.cc/l55.1 .76.114 dhep271.fh.tzw.cc,/140.171.177.87 dhcp271.fh.tzw.cmV140.171.177.87 7 7.87 dhcp271.fh.trw.cc±/140.171.1 dhcp271.fh.trw.ccW/140.171.177.87 ur14-18.provide.net/207.206.120.82 8 7 2 usrl4-18.provide.net/20 2 7 .206.120. 2 6 82 07 . 06 .120. uro14-18.provide.net/ 8 .20 .120.2 usr14-18.provide.net/20 usrl4-18.provide.net/207.206.120.82 tschichold.nedia.mit.edu/18.85.21.71 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 tschichold.media.mit.edu/18.85.21.71 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 tschichold.media. mit.edu/18.85.21.71 205.181.121.144/205.181.121.144 tschichold.media.mit.edu/18.85.21.71 7 tchichold.media.mit. edu/18.85.21. 1 tschichold.media.it.eiu/18.85.21.71 tschichold.media.mit.edlu/18.85.21.71 tschichold.media.mit.edu/18.85.21.71 dyn-107-148.interval.canu/199.170.107.148 dyn-107-148.interval.com199.170.107.148 dyn-107-148.interval.o-n/199.170.107.148 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 dyn-107-119.interval.=cn/199.170.107.119 7 ppp-106-167.interval.can/199.170.106.16 dyn-107-242.interval.can/199.170.107.242 ppp-106-167.interval.ccan199.170.106.167 7 7 0.10.119 dyn-107-119.interval.canv199.1 7 pp-106-167.intral.can/199.170.106.16 dyn-106-120.interval.can/199.170.106.120 guilhamet-pc.interval.can/199.170.105.38 guilhamet-pc.interval.ca/199.170.105.38 dyn-105-53.interval.can/199.170.105.53 dyn-107-191.interval.caV199.170.107.191 dyn-107-100.interval.canV199.170.107.100 6 6 iris6.inteal.can/199.170.10 7. 2 9 7 . 9.1 2 1repc--10.uced.edu/132.23 FHD.MIT.EIJ/18.237.0.36 FHD.MIT.E[U/18.237.0.36 mHAVAKALI.MIT.EIU/18.237.0.39 M M M M M M M M M M M M M M M M M M GLOM:Information Agglomerates player 8 8 sOl. 24 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 105 date 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980407 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980408 980409 980409 980409 980409 time 10:07:42 2M 10:14:212M 10:16:10 2M 10:17:18 2M 10:24:05 R4 10:27:18 PM 10:34:03 2M 10:35:06 P4 11:14:53 11:15:27FM 11:16:47 EM 11:19:03EM 11:40:45 2M 1:43:19 A14 2:16:25 AM 2:17:50 AM 2:20:56 AM 8:15:27 A14 8:17:30 AM 10:06:05 AM 10:30:53 AM 10:56:23 AM 11:05:36 AM 11:08:46 AM 11:09:47 AM 11:27:29 AM 11:31:54 A1 12:23:59 24 1:16:58 1:44:43 2M 2:43:46 2:45:08 24 2:48:57 2M 3:07:4724 3:19:09 24 3:21:17 2M 3:24:14 2M 3:32:43 PM 3:54:26 24 4:11:39 4 4:20:22 24 4:22:11 2M 4:25:12 4:25:27 2M 4:26:27 4:27:27 2M 4:29:5524 4:36:37 24 4:50:42 24 4:53:21 2M 4:58:07 24 5:00:16 24 5:02:11 2M 5:02:30 24 5:03:25 2M 5:05:20 2M 5:06:38 2M 5:12:54 PM 5:14:30 2M 5:25:44 2M 5:28:02 24 5:28:40 5:29:50 24 5:30:07 2M 5:31:21 5:32:43 EM 5:34:28 2M 5:52:06 PM 5:54:41 2M 6:08:29 24 6:20:24 2M 6:24:49 2M 6:26:28 FM 6:51:12 24 7:22:40 2M 7:23:37 2M 8:09:39 24 8:10:42 24 8:13:34 2M 8:14:55 2M 8:16:39 24 8:45:03 2M 8:55:13 2M 8:56:09 FM 8:58:01 8:59:40 2M 9:04:46 2M 9:05:50 M 9:09:54 FM 9:11:15 2M 9:15:45 9:25:40 PM 9:43:35 2M 10:00:10 24 10:35:44 24 10:40:11 2M 10:56:10 24 11:02:57 24 11:56:09 2M 11:57:07 2M 1:25:41A1 1:27:52 AM 1:28:49 AM 1:33:17 A1 M M M M M M M M M score 2400 14650 2100 7600 7700 2400 100 1350 231100 600 3050 0 8050 500 0 0 5000 2300 5800 0 2100 6050 400 1500 0 2500 4850 16600 1600 1700 1550 2700 4750 200 4500 4500 1700 2950 2600 0 2100 3450 7800 4850 2650 1850 7900 8950 1350 3450 9950 500 3750 6950 200 10750 6150 13650 5950 15450 22300 600 50250 9100 1200 2250 10250 4350 2600 3750 35750 11200 2800 6750 1250 1000 2450 3600 3400 9150 2200 4650 3550 1450 3150 2000 2750 7250 3650 3100 9800 11600 0 0 1000 2500 12750 16000 1500 2300 750 5150 2200 14450 duration baddies 58 440 87 161 233 217 54 54 66 19 65 15 98 7 13 75 171 54 107 1 59 166 6 62 32 121 249 174 130 86 122 68 212 45 195 115 34 401 200 81 68 93 1160 150 60 44 176 329 94 142 272 40 88 246 208 151 207 248 201 417 18 16 27 246 74 65 247 297 139 75 279 442 64 82 94 41 169 142 147 296 57 108 112 41 97 84 436 355 100 64 255 312 33 124 161 216 317 392 38 43 47 117 40 391 17 37 4 56 14 4 0 5 380 381 386 386 14 2 0 0 13 4 14 0 6 13 0 1 0 10 27 30 3 2 3 13 26 0 9 22 4 6 4 0 8 19 16 37 21 27 18 37 3 9 30 2 11 46 0 18 13 64 14 33 37 38 83 54 4 9 78 13 5 8 66 25 7 13 5 4 7 7 8 31 7 13 7 3 7 7 11 14 6 11 23 25 0 0 4 10 24 32 6 4 3 9 4 30 GLOM:Information Agglomerates hits 133 518 25 775 146 24 2 63 2476 2484 2555 2555 168 27 0 0 114 28 144 0 80 177 8 24 3 107 257 237 35 27 22 112 251 6 77 217 39 39 33 1 62 187 194 333 270 357 132 282 37 84 336 42 161 528 21 263 136 489 81 406 225 247 536 616 56 119 807 86 34 45 775 371 112 137 43 74 80 47 80 194 58 120 103 23 39 108 96 429 37 97 187 273 0 48 48 118 380 492 67 28 34 70 57 385 address of player shots ip 979 1245 59 1832 496 143 11 121 350 401 749 749 337 46 0 2 858 105 319 0 148 300 0 7 7 182 658 500 119 67 315 846 2213 42 319 712 76 420 157 7 205 460 1029 938 1232 1445 253 605 184 659 1632 106 334 2631 43 892 269 1030 288 2800 24 97 34 4208 244 422 5607 365 450 227 1009 1723 226 329 537 214 483 155 309 2802 178 298 189 79 95 190 380 1397 174 174 744 767 1 15 330 927 927 1323 389 101 57 194 75 1050 FHD.MIT.EIJ/18.237.0.36 GIAVAKALI.MIT.E2/18.237.0.39 dyn-106-105.interval.cam/199.170.106.105 CHAVAKALI.MIT.EJ/18.237.0.39 HIT0DIMENSICN.MT.EDJ/18.237.0.97 24.128.81.96/24.128.81.96 209.143.210.201/209.143.210.201 209.143.210.201/209.143.210.201 7 9 eisner.media.mit.ou/18.85.21. eisner.media.mit.edu/18.85.21.79 7 9 eisner.nedia.mit.edu/18.85.21. 79 eisner.nedia.mit.edu/18.85.21. tunnel-nt-endpoint-2. media. mit. edu/18. 85.25. 3 tunnel-nt-endpoint-2.nedia.mit.edu/18.85.25.3 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980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 1:44:23 AM 1:54:57AM 2:48:10AM 2:53:36AM 3:25:42AM 3:29:37AM 3:35:51AM 4:40:00AM 5:09:54AM 5:54:43AM 8:49:408M 9:49:32A24 10:29:29 8M AM 10:44:14 8M 10:44:49 AM 10:47:03 8M 10:48:18 AM 10:49:24 AM 11:11:45 A24 11:19:32 AM 11:24:33 FM 12:38:31 12:40:2784 1:07:255M 1:25:315M 2:32:210M 3:45:44FM 3:47:58FM 3:49:17FM 4:27:47PM 5:14:40FM 5:16:18FM 5:27:42FM 5:57:30FM 5:58:13FM 6:09:06FM 6:14:14FM 6:19:31FM 6:26:12FM 6:27:20FM 6:30:42FM 6:40:18FM 6:41:24FM 6:44:10FM 7:12:37FM 8:31:39FM 9:32:32FM 9:36:48FM 9:43:14FM AM 12:38:03 12:39:25824 6:47:118M 6:51:238M 7:07:068M 7:58:488M 8:29:268M 8:29:278M 8:38:09AM 8:40:458M 8:45:158M 8:52:04AM 8:56:598M 9:51:47814 10:10:538M 10:11:538M 10:26:29 A84 10:27:44 824 10:30:24A84 10:33:288M 10:37:52A14 10:42:25AM 11:49:14AM 11:55:18AM 11:55:578M 11:58:268M 12:52:47FM 1:35:45FM 1:54:44FM 2:39:32FM 2:44:24FM 3:00:59FM 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1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 107 date time score duration baddies hits shots ip address of player id# 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980410 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 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4:42:16A4 4:51:16A4 4:59:06AM 5:21:48A4 5:30:06A4 5:41:20AM 5:42:38A4 6:36:30AM 6:58:47AM 7:59:04AM 8:12:39AM 9:10:15AM 9:13:01AM 9:52:39AM 10:34:59A4 AM 10:40:12 AM 10:43:34 AM 11:24:42 AM 11:28:23 AM 11:36:02 FM 12:55:23 12:57:47 1:04:512M 2:22:06 2:25:38 2:32:46R4 2:37:42R4 2:53:052M 3:09:32R4 4100 5800 11800 6900 3900 14650 18450 2400 250 4000 5350 1500 15600 5350 5250 3300 3400 3550 4150 2400 1500 4250 4750 850 1050 1750 1400 1000 4950 1200 3750 6650 1200 4250 2600 9650 5150 9550 1550 5250 8600 13950 3000 8550 2400 12650 1950 400 4500 8050 4900 6300 0 0 6650 0 5700 3650 3600 3400 9550 5800 5200 5150 11400 3200 5750 4800 3000 4200 7400 1900 1800 12200 4000 8550 14950 17050 3850 15950 0 8100 4650 1500 3400 1200 1250 4200 11450 7350 7000 5600 7300 6700 11600 3750 4850 1800 4250 4300 3150 4050 7600 1450 70 165 238 217 75 327 391 142 45 155 177 169 351 308 171 97 105 157 121 79 82 134 138 29 82 59 84 46 107 88 107 156 38 133 84 223 233 229 54 162 252 687 206 224 155 390 144 84 139 371 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slip-32-100-52-146.no.us.iin.net/ 7 .100.52.1 sciroco.ndia.mit.edu/18.85.5.8 diall5.gtn.net/207.176.194.115 stornlp07.storn.ca/207.245.246.7 7 stornO1p07.storm.ca/207.245.246. 7 sto0xO1pO7.storm.c/207.245.246. dial15.gtn.net/207.176.194.115 stormnlpO7.stonn.ca/207.245.246.7 diallS.gtn.net/207.176.194.115 2 6 usr8-dialup34.mix2.Boston.nci.net/166.55.68. 2 diall5.gtn.net/207.176.194.115 stornOlp07.storm.ca/207.245.246.7 6 7 7 .245.24. 66 ston31p07.storm.ca/20 8 .55.6.226 usr8-dialup34.mix2.Boston.±ci.net/1 6 7 7 .245.24. stonrJlp07.storn.ca/20 6 8 26 .2 usr8-dialup34.mix2.Boston.nci.net/166.55. stornOlp7.storm.ca/207.245.246.7 6 8 6 .22 usr8-dia1lup34.mix2.Bosto.nci.net/166.55. 198.104.40.27/198.104.40.27 7 6.194.115 dial15.gtn.net/207.1 stornDlp07.ston.ca/207.245.246.7 198.104.40.27/198.104.40.27 7 stonOlpO7.storn.ca/207.245.246. ascend104.lkdllink.net/206.10.52.153 77 pn±2-p77.Bayu.CM/208.143.113. oak-usr4-31-31.dialup.slip.net/209.152.137.31 204.245.216.16/204.245.216.16 1Cust88.nex48.chicago.il.m.uu.net/153.35.122.88 204.245.216.16/204.245.216.16 204.245.216.16/204.245.216.16 c020h153.ipchom.reed.edui/134.10.20.153 torl-30.uninet.net.nx/200.38.205.30 1Cust112.tnt2.key1.da.uu.net/208.250.180.112 kit-onl-18.netccom.c/207.181.77.82 p134.sunbeach.net/205.214.199.156 202.186.53.130/202.186.53.130 cc1007196-a.bwrd1.nd.hoe.ccrtV24.3.17.161 2 2 0 .191.50 rsP-naxl-50.grin.net/208. ppp-ne~x1-50.grin.net/208.202.191.50 cc1007196-a.hwrd1.nd.hcne.cc±/24.3.17.1618 1Cst98.tnt4.seal.da.uu.net/208.253.68.9 93 6 7 .1 .210.2 pop-477.tig.can.au/207.214.7.222 3 5 ts3-5.slip.uwo.ca/129.100.99.2 indigo22.arsc.edu/137.229.75.122 indigo22.arsc.edu/137.229.75.122 HAlems-0C.MIT.EINJ/18.236.0.21 HAltWS-C.MIT.EI0J/18.236.0.21 HANNAS-P.MIT.EDUL/18.236.0.21 ibb0233.ibb.ruu.nl/131.211.124.233 203.38.133.103/203.38.133.103 i0233.ibb.ruu.nl/131.211.124.233 203.38.133.103/203.38.133.103 203.38.133.103/203.38.133.103 203.38.133.103/203.38.133.103 203.38.133.103/203.38.133.103 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 M M M M M M M M M M M M M GLOM:Information Agglomerates ppn-207-193-210-26.hstntx.swb~ell.net/20 s176.odopool.kth.se/130.237.37.102 s176.noudpool.kth.se/130.237.37.102 cvap08.nada.kth.se/130.237.218.77 3 24 4 36 4 0.7 .2 . 1 dialup236-1-41.swi-net.e/1 2 xtsd0412.it.wu.edu/134.121.3. 143.233.119.38/143.233.119.38 ppp-9.ts-1.pro.idt.net/169.132.225.9 }opkins.cs.jyu.fi/130.234.49.78 pythia-Epp10.ccf.auth.gr/155.207.1.234 pythia-pP10.ccf.auth.gr/155.207.1.234 pni62-32.inage.dk/194.234.60.96 199.6.62.21/199.6.62.21 199.6.62.21/199.6.62.21 patricke.ne.medione.net/24.128.52.89 tc1-23.utah-inter.net/208.14.200.33 tcl-23.utah-inter.net/208.14.200.33 tcl-23.utah-inter.net/208.14.200.33 cx51872-a.alsvl.occa.han.can24.1.166.129 cx51872-a.alsvl.oca.me.can±/24.1.166.129 slcl20h.nolen.xmission.can/166.70.9.120 4 3 47 .25 .5. ppp-ft12-47.netrox.net/20 pi-ft12-47.netrox.net/204.253.5.47 oak-alg-gw2-2.ncal.verio.cn/207.21.138.65 ok-alg-gw2-2.ncal.verio.can207.21.138.65 oak-alg-gw2-2.ncal.verio.cn/n207.21.138.65 .gatech.edu/130.207.239.10 0310ECE010.ecn 108 date 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980411 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980412 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 time 3:11:32 O4 3:17:23 O4 3:55:44 5:03:42 5:14:450M 5:37:15OM 5:38:41OM 5:58:58OM 6:01:31 7:28:11 8:00:55 8:03:25 8:07:32OH 8:14:46 8:55:10 9:03:02 9:17:46 9:19:17 9:21:21 10:32:35OM 10:44:40OM 10:53:40OM 11:24:09OM 11:26:36OM 11:28:29OM OM 11:58:15 11:59:53OH 12:02:25AM 12:03:07A14 1:04:37AM 1:04:59AM 1:06:23AM 1:08:09AM 1:10:26AM 1:12:39AM 4:18:03AM 6:19:31AM 6:37:44AM 9:12:58AM 9:19:19AM 9:29:30AM 9:42:09AM AM 10:37:14 AM 10:46:28 AM 10:46:44 12:02:03 1:12:55 OH 1:15:50 OH 1:23:45OH 1:3110 OH 1:42:14 1:43:46OH 3:49:24OM 3:56:36OM 4:00:03OM 4:01:18O 4:06:59OH 5:36:44OM 5:38:24OM 6:33:03OM 7:08:08OM 7:51:40OM 7:55:53 7:58:12 7:59:03OH 7:59:09OM 8:48:34OM 8:52:03OM 8:55:33OM 9:01:31 9:22:54 OM 9:29:09M 9:33:29 OH 9:39:46 9:42:14 9:49:06 9:51:20 10:10:50 10:15:11 10:15:32OM 10:19:54OM 10:27:49OH 10:30:01 10:32:41OH 10:41:55OH 10:53:50OM 11:05:19 11:18:37 OM 11:26:57 11:36:22 11:39:48 11:50:23 11:55:49M AM 12:02:49 12:20:29 AM AM 12:21:51 AM 12:23:58 AM 12:25:02 AM 12:28:40 12:34:59 AM AM 1:02:05 AM 1:06:18 AM 1:09:32 AM 1:13:24 M M M M M M M M M M M M M M M M M M M M M M M M M M M M M score 3100 8800 2950 3550 4050 3850 3850 3000 6200 3050 5300 4850 11400 2550 8600 9700 2000 2450 2250 7300 3400 7650 3550 2650 600 3250 2750 0 10400 19250 0 900 500 3750 750 5700 3200 3000 5200 29950 100 3100 5050 850 7100 5100 650 4550 1000 3200 4750 3000 5800 0 3400 17300 14100 100 2550 7850 2050 5750 2850 1900 10250 8650 3750 7600 7400 15350 2000 800 4050 8950 0 21550 600 7750 3650 7900 4750 2500 6250 9300 20050 10050 13600 27050 13050 8700 5850 10850 10050 9200 13850 3000 5600 2900 7250 14850 3200 8400 6650 18100 duration 111 333 202 99 08 136 58 50 138 138 201 261 293 105 359 456 103 57 85 242 252 528 97 181 52 117 81 1 342 950 128 67 89 118 58 200 227 122 167 623 50 50 211 50 224 243 91 159 106 99 211 75 471 143 262 449 325 96 83 260 213 162 84 163 227 152 95 194 266 549 164 76 217 612 195 523 268 236 394 263 206 59 116 145 776 315 582 773 475 323 190 387 273 394 406 63 159 161 261 363 46 212 179 299 GLOM:Information Agglomerates baddies 6 19 6 7 10 8 7 5 13 11 12 11 23 6 19 20 5 5 4 18 8 25 8 5 2 6 5 0 22 48 0 1 2 15 1 12 7 6 13 52 0 5 11 2 15 13 1 12 2 5 13 9 20 0 13 35 38 0 9 16 4 13 10 3 20 16 8 15 14 28 8 3 9 31 0 80 2 14 12 14 12 4 13 20 70 31 46 100 41 20 15 28 19 18 54 12 14 6 15 35 7 18 11 30 hits 38 144 40 48 58 116 47 30 137 130 132 64 404 45 166 285 49 31 45 132 51 197 65 84 29 41 38 0 281 559 7 12 35 92 9 135 104 44 104 728 2 35 101 11 156 106 7 122 17 81 139 116 184 13 136 485 357 2 102 189 33 94 96 20 262 179 49 136 210 453 90 65 83 229 8 475 59 171 135 170 133 29 105 177 433 233 304 579 302 237 149 222 204 224 317 94 144 34 189 452 80 204 190 424 shots 206 491 193 233 174 497 261 90 401 378 470 234 753 80 740 1003 212 121 138 451 316 1477 111 154 47 131 101 0 712 3050 21 31 166 281 69 397 396 269 500 1593 10 88 299 29 321 449 36 308 58 183 479 365 1839 17 355 1075 999 76 406 457 158 299 223 41 556 344 177 359 819 1708 117 151 309 1969 87 2446 68 462 1134 383 704 89 289 375 6605 2463 3492 8175 2619 1647 882 2162 1072 1266 1778 367 851 318 1264 2125 193 810 619 1983 id# 1383 1384 1385 1386 1387 1388 1389 1390 1391 1392 1393 1394 202-218-168.ipt.ol.com152.202.218.168 23 2 2 4 8 1395 . . 1396 power.cocon.kiev.ua/195.5.24.194 1397 chicago.il.ne.uu.net/153.35.122.55 lCust55.nex48. 1398 1Cust55.nex48.chicago.il.ms.uu.net/153.35.122.55 1399 p2-30.z016.glo.be/206.48.181.94 2 1400 p -30.zo016.glo.be/206.48.18.94 1401 p2-30.z016.glo.be/206.48.181.94 1402 ts003d17.ksc-o.oncentric.net/206.173.129.77 1403 fctntsOlc43.nbnet.nb.ca/198.164.201.49 8 6 2 01 49 1404 .14. . fctntsOlc43.ntnet.nb.ca/19 1405 -stancu.tel.insa-lyn.fr/134.214.61.117 8 98 05 2 1406 . 11. . 8 nexl-34.netinc.ca/2 1407 nex1-34.netinc.ca/205.211.8.9 1408 206.101.127.92/206.101.127.92 1409 206.101.127.92/206.101.127.92 1410 ppp-x9-1.ecn.purdue.edu/128.46.112.1 1411 dd45-248.dlub.ccupuserve.ccnV199.174.177.248 1412 205.181.121.156/205.181.121.156 1413 175-240-253.ipt.aol.com/x152.175.240.253 7 4 2 3 1414 5.20. 5 175-240-253.ipt.ol.ccan/152.1 1415 175-240-253.ipt.aol.ccm/152.175.240.253 7 24 2 3 1416 5. 0. 5 175-240-253.ipt.ol.ccm/152.1 1417 175-240-253.ipt.aol.can/152.175.240.253 1418 hh2133062.direepc.ccn/207.168.133.62 1419 pC19E9562.dip.t-enline.de/193.158.149.98 1420 user33-i.erlangel.netsurf.de/194.163.170.225 1421 pve-pn3-4-200.harborcan.net/208.4.184.200 1422 glum.media.mit.edu/18.85.25.34 1423 shaw.c/24.64.141.94 cybers141d94.nt.wave. 1424 195.67.46.122/195.67.46.122 1425 p>92.vif.ccn207.219.108.92 1426 p>92.vif.<m207.219.108.92 7 4 1427 .10 pn11040.teleccan.alles.or.jp/203.139.9 1428 dialup46.tnt0O.livenet.net/206.156.31.47 1429 dia1151.bway.net/205.198.117.151 9 7 1430 8.11.151 dial151.bwy.net/205.1 1431 BAA.MIT.E[U/18.241.1.64 1432 BAA.MIT.E[/18.241.1.64 1433 Tl-Aviv-194-180.access.net.il/192.116.194.180 1434 Tel-Aviv-194-180.access.net.il/192.116.194.180 1435 BETSYM.MIT.E[U/18.63.1.89 6 1436 pop-annex-0614.t1.total.net/205.236.55.9 1437 E[U/18.63.1.89 BEISYM.MIT. 1438 nO105h038.thezane.net/198.165.105.38 1439 n105h038.thezone.net/198.165.105.38 1440 slipl39-92-12-152.Ssn.de.ihn.net/139.92.12.152 1441 slipl39-92-12-152.hm.de.ihn.net/139.92.12.152 50 7 8 1442 .2 2.12 207-172-128-250.s59.as4.col.erols.cc/207.1 1443 gate5.ca.us.ihn.ccn/198.133.22.211 1444 pp4a.nerlin.net.au/203.20.229.132 1445 pp4a.nerlin.net.au/203.20.229.132 1446 idthrandir.uced.eclu/132.239.58.106 1447 po4a.nerlin.net.au/203.20.229.132 32 1448 jpp4a.nrlin.net.au/203.20.229.1 6 6 2 27 1449 .55.9. 7 usr12-dialup35.mix2.Bostn.ni.net/16 1450 usrl2-dialup35.mix2.Boston.oni.net/166.55.69.22 1451 igarashi.nedia.mit.edu/18.85.21.69 7 1452 usr12-dialup35.mix2.Boston.nci.net/166.55.69.22 1453 LFSH.MT.EJ/18.98.0.249 1454 LFSHEN.MIOT.H/18.98.0.249 1455 ts0310.powep.ccm.au/203.18.83.106 1456 LFMEN.MIT.E[/18.98.0.249 1457 dt083n5d.san.rr.coc/204.210.25.93 1458 LFSOEN.MIT.lE[/18.98.0.249 7 7 2 3 3 22 1459 erols.can207 .17 .1 3 3 .1 22 207-172-133-122.s59.as22.ol. 1460 .12.1 .1 207-172-133-122.s59.as22.ml.erols.om/20 1461 LFSHEN.MIrT.EIJ/18.98.0.249 207-172-133-122.s59.as22.col.erols.can/207.172.133.1221462 1463 LFSHEN.MIT.EI2J/18.98.0.249 1464 EE3 .MIT.E[LJ/18.207.0.48 1465 EI/18.207.0.48 EERKi.MIT. 1466 BEN37.Mr.EI./18.207.0.48 1467 LFOIEN.MIT.3EIJ/18.98.0.249 1468 EDJ/18.98.0.249 LFS-hEN.MIT. 1469 LFSHEN.M.IET.EIJ/18.98.0.249 1470 LFSHEN.MIT.EJ/18.98.0.249 1471 E[J/18.98.0.249 LFSHEN.MT. 1472 LFSHEN.MIT.ME[/18.98.0.249 1473 LFSHEN.MIT.EJ/18.98.0.249 1474 LFSHM.MIT.E[I/18.98.0.249 1475 LFSHEN.MT.E[2/18.98.0.249 1476 LFSHEN.MIT.E3J/18.98.0.249 1477 coosbay4-35.transport.cnrr/209.51.87.35 1478 coosbay4-35. transport.co/209.51. 87.35 1479 69 igarashi.media.mit.eu/18. 85.21. 1480 coosbay4-35.transport.can/209.51.87.35 1481 igarashi.media.mit.edu/18.85.21.69 1482 igarashi.ndia.mit.edu/18.85.21.69 1483 cooper.mdia.miit.edu/18.85.21.70 2 6 8 1484 1. 9 .85. igarashi.media.oit.edu/1 1485 igarashi.nedia.it. edu/18.85.21.69 1486 ooper.media.m±it.edu/18.85.21.70 ip address of player bbd1-s5.nt1.colba.net/209.89.92.15 bhdl-s5.ntl.colba.net/209.89.92.15 noder63.kimanet.ccWrn208.6.38.170 pdx94-b48-45.teleport.crn/198.106.152.123 ap-08.netexpress. ee/194.204.2.138 FHD.MIT.EIUJ/18.237.0.36 FHD.MIT.EIJ/18.237.0.36 dreams.media.mit. edu/18.85.21.31 dreams.media.it.edu/18.85.21.31 ts3ip112.cadvision.ccm207.228.66.112 rpp-2-48.infanie.be/212.232.2.48 pp-2-48.infonie.be/212. 109 date 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 980413 time 1:17:39 AM 1:24:00 AM 1:53:56AM 1:59:06AM 2:03:35AM 2:07:42AM 2:21:34AM 2:23:19AM 2:30:27AM 2:37:33AM 2:42:46AM 2:53:56AM 3:19:06AM 4:42:38AM 4:45:58AM 4:48:11AM 4:52:00AM 4:53:56AM 4:58:47AM 4:59:29AM 5:09:56AM 5:11:50AM 5:21:31AM 5:24:55AM 5:51:37AM 5:52:51AM 5:54:09AM 5:55:42AM 6:00±43AM 6:06:33AM 7:51:50AM 8:37:27AM 9:40:23AM 9:43:21AM 9:45:41AM 9:46:07AM 9:47:21AM 9:47:41AM 9:48:50AM 9:49:27AM 9:49:39AM 9:54:17AM 9:56:02AM 9:56:26AM 9:57:19AM 10:01:57 AM AM 10:32:41 AM 11:27:29 11:35:10 AM 1M 12:06:04 12:33:15 EM 12:39:24 R4 R4 12:40:56 12:44:342M EM 12:46:20 12:47:42 RM 12:49:26 EM 12:50:26R4 12:53:15 PM 12:59:208M 1:15:071M 1:19:251M 1:43:362M 2:02:13EM 2:27:122M 2:46:252M 2:49:47 2:50:47PM 3:13:582M 3:16:30 3:19:12PM 3:22:442M 3:24:5124 3:29:17R4 3:29:322M 3:31:182M 3:38:392M 3:42:352M 3:47:312M 3:50:522M 3:50:552M 4:05:002M 4:31:562M 4:33:462M 4:38:032M 5:56:18 6:00:10m 6:00:482M 9:39:322M 9:41:4024 R4 10:02:39 10:04:064 10:06:09 10:13:07 10:13:48 10:15:212M 10:20:542M 10:23:452M R4 10±53:06 10:55:4224 10:58:592M 11:02:2324 11:05:152M 11:07:362M M M M M M M score 18350 11050 4500 9000 7250 9050 29700 4100 12750 21400 13400 23450 10200 3750 12250 8350 3600 9650 21500 12800 4600 33550 1050 7450 11200 4600 5050 4750 12200 26200 0 11100 2500 2400 4850 850 2550 4150 2650 3650 4000 6750 6200 1100 4350 5350 8400 4250 10200 5500 400 2350 2000 2500 3500 3500 3700 1200 5450 700 1750 4750 7850 750 50 50 7750 3400 4250 3700 3800 18500 4800 11450 4500 3950 7050 3750 4650 7350 8550 3150 3000 3000 0 4300 2000 3250 27250 0 5350 1000 3150 2400 3450 4200 9750 350 3750 7850 10700 10050 9150 7150 duration 240 256 133 283 252 227 678 131 330 411 297 649 186 167 263 118 44 261 259 316 73 727 47 187 121 60 63 78 286 338 49 411 63 77 104 89 85 104 73 89 185 262 225 75 166 262 405 160 446 102 113 152 211 59 91 65 88 45 153 176 115 273 329 95 16 60 900 241 366 135 160 887 228 302 532 372 424 220 95 274 190 476 281 149 11 86 51 116 551 2 71 68 200 165 229 119 263 80 107 141 180 188 156 125 GLOM:Information Agglomerates baddies 31 19 9 22 14 20 53 10 24 42 24 43 25 8 29 18 7 23 33 22 10 67 3 14 19 8 9 12 21 44 0 20 7 4 11 3 4 11 4 9 14 18 13 3 9 13 21 8 20 15 1 8 4 4 7 7 7 2 13 2 7 12 23 3 0 0 19 8 9 7 14 47 10 24 9 8 17 8 11 15 18 6 5 5 0 7 3 7 44 0 13 4 7 4 8 9 23 0 8 14 20 19 16 14 hits 434 306 82 218 143 200 785 75 339 525 328 533 240 59 333 179 84 229 489 318 73 928 21 140 273 100 148 146 299 637 0 307 58 27 82 55 31 112 29 83 122 169 80 28 68 88 173 59 334 139 8 63 30 29 45 40 44 31 212 17 79 104 189 47 1 1 194 44 61 44 114 489 67 364 103 50 102 45 83 155 166 40 30 43 0 114 22 61 760 0 139 83 76 25 47 54 215 18 53 178 283 276 233 122 shots 1515 1097 116 392 457 369 4032 473 1629 1983 1452 3459 1087 275 1413 605 175 1778 2121 1758 619 5712 104 299 770 229 266 421 2359 2629 0 2364 298 241 285 127 152 470 138 506 541 826 138 76 283 1001 1677 248 1171 245 81 666 89 105 188 194 241 52 733 34 251 1634 3459 357 2 46 1156 226 231 136 340 3893 106 654 828 156 261 95 182 511 380 244 849 597 1 174 42 536 4837 0 320 164 237 115 228 156 441 121 133 313 544 502 426 312 id# 1487 1488 1489 1490 1491 1492 1493 1494 1495 igarashi.media.mit.edu/18.85.21.69 1496 igarashi.mdia.miit.edu/18.85.21.69 6 1497 9 igarashi.nedia.mit.edu/18.85.21. 1498 igarashi.nedia.mit.edu/18.85.21.69 1499 igarashi.media.mit.edu/18.85.21.69 1500 wildcazd.strong-fund.cc/204.154.227.254 1501 igarashi.miedia.dit.edu/18.85.21.69 1502 igarashimedia.mit.edu/18.85.21.69 7 1503 0 cooper.ndia.mit.edu/18.85.21. 1504 igarashi.media.mit.edu/18.85.21.69 1505 cooper.ndia.idt.edu/18.85.21.70 1506 igarashi.media.mit.edlu/18.85.21.69 7 1507 0 coopr.ndia.mit.edu/18.85.21. 1508 igarashi.nedia.nt.edu/18.85.21.69 1509 195.188.152.12/195.188.152.12 1510 195.188.152.12/195.188.152.12 1511 cooper.nedia.nit.edu/18.85.21.70 1512 cooper.ndia.mit.edu/18.85.21.70 1513 cooper.nedia.mit.edu/18.85.21.70 1514 ooper.nedia.mit.edu/18.85.21.70 8 2 7 1515 5. 1.7 0 cooper.nodia.dt.edu/18. 1516 cooper.media.mit.edu/18.85.21. 0 1517 t6o48p21.telia.canVl95.198.255.81 1518 igarashi.nedia.mit.edu/18.85.21.69 88 98 2 2 77 1519 . 0 .177 .18 hapc45.hmeaccount.can/l 1520 hapc45.meounot.omV198.202.1 .18 1521 c t.can/198.202.177.188 hapc45.hc 1522 dialin30.hamilto.globalserve.net/209.90.138.93 88 98 2 2 77 1523 hapc45. nreaccount.can/l . 0 .1 .1 1524 hapc18.hnsaccount.can/198.202.177.128 1525 hapc45.nteacount.mn/198.202.177.188 1526 hapc18.1tneaccount.can/198.202.177.128 1527 dialin30.hamiltno.globalserve.net/209.90.138.93 1528 dialin3.hailton.globalerv.net/209.90.138.93 1529 hapc19.hunmaccomt.mn/198.202.177.129 1530 193.167.166.62/193.167.166.62 1531 .net/209.90.138.93 dialin30.hanilton.globale 1532 dialin3O.hiailtmo.globalserve.net/209.90.138.93 1533 205.181.121.144/205.181.121.144 9 7 1534 pc-1933.cn.rogero.wave.ca/24.112.4 9 . 72 1535 pc-1933.cn.roger.iave.ca/24.112.4 2 28 97 . 2 1536 .1 opo75a.nrlin.net.au/203.20. 1537 tolinen.tdb.uu.se/130.238.136.138 1538 dig01-34.can.sota-oh.cca/209.190.83.37 1539 204.62.44.150/204.62.44.150 1540 204.149.86.2/204.149.86.2 1541 204.149.86.2/204.149.86.2 1542 204.149.86.2/204.149.86.2 1543 204.149.86.2/204.149.86.2 1544 204.149.86.2/204.149.86.2 1545 204.149.86.2/204.149.86.2 1546 dt030n31.san.rr.com/204.210.19.49 1547 pete.nntevideo.can.uy/207.3.115.131 1548 xcurrmt-proxy.njec.ccm/165.254.249.17 1549 xcurrost-proxy.njec.can/165.254.249.17 1550 209.2.60.60/209.2.60.60 0 5 89 2 10 1551 .1 . .5 actor.conveyor.ccm/2 1552 nbalab2-dhcp-gsb--dynamic-182.Stanford.EIU/171.64.223.182 1553 fctntsl0c43.nhnet.nb.ca/198.164.201.241 1554 host-040.rumrec.ccm/207.181.124.40 1555 131.156.20.39/131.156.20.39 1556 131.156.20.39/131.156.20.39 1557 molette.tau. edu/165.91.218.5 1558 tc3-41.utah-inter.net/208.14.202.51 1559 hapc19.h-neaccount.can/198.202.177.129 7 1560 port197.ster.prodigy.net/204.237.138.19 1561 mimolette.tanm. eu/165.91.218.5 1562 hapc19.hnaccount.com198.202.177.129 1563 hapc19.hcnoaccont.aon/198.202.177.129 1564 hapc19.hneraccount.cc/198.202.177.129 1565 port197.str.prodigy.net/204.237.138.197 1566 /208.225.65.92 1567 port197.ster.prodigy.net/204.237.138.197 3 1568 ugsparc3.eeag.tornto.edu/128.100.1 .53 7 1569 xcurrent-poxy.njec.ccml65.254.249.1 1570 194.215.211.28/194.215.211.28 22 8 8 1571 . 5.5. 1 noe2g.ndia.oit.edu/1 1572 du79-2.ppp.algonet.se/195.100.2.79 1573 host-040.rmercn.ccW/207.181.124.40 1574 198.178.150.240/198.178.150.240 7 1575 0.123.168 unknon-123-168.o1lvinc.<xn198. 1576 p;s1-27.shaohw.net/209.4.39.47 8 8 2 7 1577 cooper.nedia.mit.edu/1 8 . 5. 1. 7 0 1578 .85.21.0 ooper.nedia.it.edu/1 207-172-133-253.s62.as24.c1.erols.-m/207.172.133.253 1579 1580 dyn-106-202.interval.can/199.170.106.202 1581 dove.cow.cc/207.155.14.39 1582 dyn-106-202.interal.ccm199.170.106.202 207-172-133-253.s62.as24.col.erols.xc/207.172.133.253 1583 1584 van-52-0840.direct.ca/204.174.253.136 1585 kirkO8-8.accessone.anm209.43.129.104 1586 kirk08-8.accesone.cm209.43.129.104 1587 kirk08-8.accessone.ccm/209.43.129.104 1588 kirk08-8.accessoe.cV209.43.129.104 1589 kirkO8-8.accessone.cn/±209.43.129.104 1590 kirkO8-8.accessone.com/209.43.129.104 ip address of player cooper.media.mit.edu/18.85.21.70 igarashi.media.mit.edu/18.85.21.69 xtod1317.it.wsu.edu/134.121.4.57 xtsd1317.it.wou.edu/134.121.4.57 xtsd1317.it.wsu.edu/134.121.4.57 xtsd1317.it.wsu.edu/134.121.4.57 igarashi.media.mit.edu/18.85.21.69 mp-208-18-64-222.wchtks.owbell.net/20 pp-22.rb5.exit109.cc 110 duration 179 223 193 62 358 598 191 310 477 154 105 38 34 104 124 161 46 246 baddies 16 23 24 4 25 49 21 36 54 22 2 2 3 6 0 4 2 39 hits shots 228 339 405 25 412 775 238 446 810 195 29 13 20 56 6 34 15 599 411 642 625 42 663 3191 719 981 1914 575 35 39 45 336 62 219 38 1427 ip address of player kirk8-8.accessone.can/209.43.129.104 9 .43.129.121 kirk08-25.aceonoe.omn/20 kirk08-25.accessone.cV/209.43.129.121 ppp42.pulluhn.ceV204.227.174.42 4 2 27 7 4 42 . .1 prp042.pllno.ccn/20 2 27 17 4 .42 2 4 4 0 . . . ppp02.pullen.can/ kirk01-9.accesoe.canV209.43.128.9 kirkOl-9.accesone.can/209.43.128.9 kirk01-9.accessone.can/209.43.128.9 kirkOl-9.accessone.con/209.43.128.9 2 93 67 6 2 aws11.kyamk.fi/1.1 .5 .11 ad-012.infooe.ccn/206.30.91.12 ad-012.infohouse.cce/206.30.91.12 194.215.211.8/194.215.211.8 194.192.151.189/194.192.151.1897 3 0.2 2 user40-i.erlange.netsurf.de/194.163.1 station17.ultimm-nia.isdnet.net/194.149.174.114 kaze.mndia.mit.edu/18.85.5.79 id# 1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 23900 196 36 599 1197 kaze.nieia.mit.edu/18.85.5.79 1609 5000 7250 3900 4000 7250 0 1800 2750 0 3500 2400 0 5250 3600 3300 3300 2600 150 4600 2800 5450 35350 1250 7250 2650 2400 1150 1100 3800 1850 3600 4450 1250 8600 3650 12350 3150 2700 3350 3950 1200 3900 2600 6500 4700 4250 800 1800 1350 11350 1950 3800 950 5600 4950 0 3050 750 250 5600 15400 1200 8950 6200 11700 9650 7350 250 8450 5950 1450 8400 5900 2400 7850 33350 31850 9550 7000 350 7600 5500 9950 5300 9200 160 203 142 125 218 15 171 89 236 131 86 4 245 130 129 143 147 247 186 83 175 888 72 267 115 78 57 73 106 47 215 118 78 292 123 271 93 312 79 193 68 89 112 216 108 62 54 24 44 202 35 628 243 328 106 102 64 58 15 151 1010 73 197 221 281 216 218 20 1110 104 164 693 183 138 195 492 571 303 196 48 285 388 256 128 226 10 15 9 7 15 0 3 5 0 8 4 0 9 7 9 7 6 0 10 4 10 75 3 15 5 6 3 4 9 3 11 9 4 18 7 32 7 5 7 9 2 8 5 17 14 8 3 3 4 22 5 6 2 14 9 0 8 1 0 14 61 2 19 12 30 23 15 0 19 11 5 28 10 4 15 67 61 20 14 1 23 22 20 10 20 112 134 76 55 147 0 22 71 4 48 24 5 129 96 103 43 82 20 91 33 174 1038 21 161 29 55 54 53 52 19 128 60 82 232 55 272 41 33 47 110 20 48 34 101 144 51 38 46 79 255 57 41 17 120 91 0 99 9 5 161 342 12 170 113 230 208 155 6 208 207 63 212 264 24 304 812 823 245 148 66 132 127 302 92 214 416 451 191 331 490 3 71 94 16 120 97 5 311 196 176 171 211 27 232 338 287 3432 76 561 125 101 84 163 148 70 505 237 211 813 219 1992 175 200 164 567 208 332 92 422 274 127 87 51 127 366 95 151 47 203 162 0 271 41 25 734 1780 129 1786 237 3062 2063 1672 26 2789 343 595 3607 435 248 570 2271 2373 1748 1365 114 3119 654 1737 828 1470 h136.s3.ts3l.hinet.net/163.31.3.136 h136.s3.ts3l.hinet.net/163.31.3.136 fw.ban.nl/194.229.190.5 fw.ban.nl/194.229.190.5 9 0.5 fw.baan.nl/194.229.1 9 2 3 7 3 . 1 .5 . ww.cesvit-rtrt.regioe.toscana.it/15 6 3 4.8 bibelot.gr.osf.org/130.105. pc.ne-uk.co.uk/193.130.154.101 nastrond.ifi.uio.no/129.240.64.65 131.215.82.174/131.215.82.174 7 .199.252 167-199-252.ipt.aol.<xxn/152.16 167-199-252.ipt.ol.cco/152.167.199.252 131.215.82.174/131.215.82.174 131.215.82.174/131.215.82.174 131.215.82.174/131.215.82.174 131.215.82.174/131.215.82.174 eeoasis.cityu.edu.hk/144.214.41.62 78 33 . pionO4.tphys.physik.uni--tuebingon.de/134.2. onc2ppl7.alltel.net/166.102.105.18 rnnc2ppl7.alltel.net/166.102.105.18 eoasis.cityu.edu.hk/144.214.41.62 tcl-59.utah-inter.net/208.14.200.69 rembrandt.cs.tod.ie/134.226.38.70 204.165.32.159/204.165.32.159 199.93.176.6/199.93.176.6 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626 1627 1628 1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659 1660 1661 1662 1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691 1692 1693 1694 date 980413 980413 980413 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 11:10:51 2M 11:33:06FM 11:36:34 12:38:15AM 12:44:29AM 12:54:380M 1:43:02AM 1:48:30AM 1:56:35AM 1:59:26AM 2:48:00AM 2:59:36AM 3:02:22014 3:21:12A14 3:46:59A14 3:52:12AM 4:09:06AM 4:41:38AM score 8250 13400 12350 2400 14150 28850 9450 17750 30250 10050 550 1250 1600 3050 150 2450 1350 25650 980414 4:48:07AM 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 6:18:42AM 6:22:21AM 7:04:31AM 7:06:52AM 7:10:48AM 8:22:16AM 8:42:14AM 9:14:000M 9:47:02 10:12:12 AM 0M 10:16:26 014 10:16:33 10:16:5214 AM 10:24:22 10:33:110M 10:37:31 10:50:480M 0M 11:17:03 A14 11:33:16 0M 11:34:55 11:48:180M 12:53:2624 1:22:32 1:26:492M 1:41:0924 2:17:362M 2:23:442M 2:25:132M 2:27:15 2:28:18 2:43:29 2:45:49M 2:47:17 2:52:272M 3:08:082M 3:14:552M 3:20:092M 3:25:38 3:29:39 3:33:122M 3:34:182M 3:36:142M 3:41:152M 3:43:49R4 3:44:07FM 3:45:2524 3:46:32 3:47:05 3:48:06 3:49:162M 3:49:382M 4:03:52 4:09:052M 4:10:4624 4:20:4124 4:25:582M 4:32:26EM 4:34:082M 4:34:392M 4:35:102M 4:43:102M 5:33:392M 6:12:59 6:13:2724 6:17:55 6:21:4724 6:26:512M 6:33:112M 6:45:362M 7:08:052M 7:11:4724 7:24:1624 7:25:43 7:27:232M 7:29:15R4 8:18:3924 8:28:2124 9:02:3824 9:06:18R4 9:07:52 9:11:19 9:15:082M 9:15:53FM 9:21:542M 9:25:55 time M M M M M M M M M M M M M M M M M M M M GLOM:Information Agglomerates wn16-071.paris.worldnet.fr/195.3.16.7 209-142-3-48.stk.inreach.net/209.142.3.48 209-142-3-48.stk.inreach.net/209.142.3.48 209-142-3-48.stk.inteach.net/209.142.3.48 209-142-3-48.stk.inreach.net/209.142.3.48 8 4 .151. nuc80.mik.npled.kl2.ca.us/204.9 80 0 nac80.milk.npusd.kl2.ca.us/204.94.151. nmc80.mik.npuad.k12.ca.us/204.94.151.80 8 4 4 .9 .151.0 rc80.mk.npasd.k2.ca.us/20 n-&c81.mlk.npusd.k2.c.us/204.94.151.81 205.181.121.144/205.181.121.144 unkorwn-35-6. nwhse.ocanV/206.189.35.6 unknon-35-6.nhe. car/206.189.35.6 6 unknown-35-6.nwhse.can/20.189.35.6 unknown-35-6.nwhe.can/206.189.35.6 host-124.concretemdia.cn/207.240.49.124 host-124.concreteedia.can/207.240.49.124 hot.njit.edu/126.235.35.181 unkmown-35-6.nwhse.can/206.189.35.6 7 38 44 .1 .2 port244.ster.prodigy.net/204.23 port244.ster.prodigy.net/204.237.138.244 9 6 7 slnck-096.sluktech. can/20 .155.10 .9 skunk-096. skunktech.ccn207.155.109.96 6 7 55 skunk-096.skunktech. can/20 .1 .109.9 port244.ster.prodigy.net/204.237.138.244 skunk-096. slunktech. c±xn/207.155.109.96 unknon-35-6.nohse.can/206.189.35.6 geekboy.concretenedia.can/V207.240.49.115 6 6 89 3 .1 . 5. unknown-35-6.nthse.can/20 199.6.62.21/199.6.62.21 ts67ip131.cadvision.can/207.228.75.131 208.206.247.169/208.206.247.169 EW/18.63.1.89 BEISYM.MIT. BETSYM.MIT.m.J/18.63.1.89 208.206.247.169/208.206.247.169 ts67ipl3l.cadvision.can/207.228.75.131 204.245.151.238/204.245.151.238 205.181.121.144/205.181.121.144 adn-ts-002florlaPl3.dialsprint.net/206.133.72.48 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 205.181.121.144/205.181.121.144 rpp55.ko.tele.dk/194.239.168.55 205.181.121.144/205.181.121.144 bb-011.nylink.axn208.129.65.11 ts70ip229.cadvision.canfV207.228.75.229 ts70ip229.cadvision.ca207.228.75.229 hb-011.nylink.can/208.129.65.11 ts70ip229.cadvision.can/207.228.75.229 tb-011.nylink.cam208.129.65.11 162.pl.'Iht02.MIA.Icanect.Net/206.142.168.162 6 8 62 .1 162.pl.'Iht02.MIA.Icanect.Net/206.142.1 BETSYM.MIT.H12J/18.63.1.89 BETSY4M.MlIT.EW/18.63.1.89 7 22 8 8 8 . .6 .1 ts82ip18.cadvision.amV20 BETSYM.IT.E/18.63.1.89 ts82ip18.cadvision.ca/207.228.68.18 BETSMM.MIT.E/18.63.1.89 BETSYM.MIT.9J/18.63.1.89 BETSYM.MIT.EWU/18.63.1.89 111 date 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980414 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980415 980416 time score duration baddies hits shots ip address of player id# 9:29:25 FM 9:32:30 PM 9:38:50 FM 9:43:14 M 9:47:25 FM 9:52:21 PM 9:57:42 EM 10:01:58FM 10:06:57FM 10:10:45FM 10:14:22PM 10:18:19FM 10:23:17FM 10:25:46PM 10:27:35FM 10:28:36FM 10:30:49FM 10:32:38FM 10:34:36FM 10:39:47FM 10:44:42FM 10:50:22FM 10:59:10 11:02:14FM 11:06:59FM 11:08:59FM 11:16:38 11:23:31FM 11:31:42FM 1:05:58AM 1:15:06AM 2:45:36A14 7:55:58AM 8:27:59AM 8:28:21AM 9:30:27AM 9:44:00AM 9:44:14AM 9:50:52AM 9:56:34AM 9:58:32AM 10:12:12 AM 10:56:51 AM AM 11:13:44 11:24:38AM 11:33:05 AM 1:04:27FM 1:04:54FM 1:06:57FM 1±07:41FM 1:34:33FM 1:44:53FM 1:46:43FM 1:48:37FM 1:55:11FM 2:04:43FM 2:07:30FM 2:09:01FM 2:09:32FM 2:12:36FM 2:12:58FM 2:23:25FM 2:24:50FM 2:26:00FM 2:27:52FM 2:36:27FM 2:41:12FM 3:36:52FM 3:37:57FM 3:43:31FM 4:08:14FM 4:09:01FM 4:09:55 FM 4:22:38FM 4:26:47FM 4:28:33FM 4:30:22FM 5:01:00FM 5:02:57FM 5:04:43FM 5:28:45FM 5:32:07FM 6:07:51FM 6:22:20FM 6:22:24FM 6:41:18FM 7:02:42FM 7:03:33FM 8:19:57FM 8:22:07FM 8:24:29FM 8:26:12FM 8:28:47FM 8:47:51FM 8:52:05FM 9:01:12FM 10:07:08FM 10:19:47FM 10:26:01FM 11:02:19FM 11:03:09FM 11:06:34FM 11:08:18FM 12:42:18AM 8300 5100 9800 10200 9250 12700 9100 6600 6600 7350 7700 5450 8050 1250 3350 13500 3650 9550 4850 10900 10650 11150 16100 6750 10900 4350 11850 12550 12700 9800 32600 1200 0 29100 2700 0 0 1100 8950 0 10500 2350 350 7150 5500 2250 1100 1300 4050 600 1250 900 2450 3900 2550 6800 4650 2500 8650 9350 7250 3150 600 2200 500 5700 3200 150 1500 0 6400 30550 2100 1200 0 4700 3700 3000 2400 3750 0 3450 13750 33850 0 30850 5250 10150 3400 5350 2000 4350 8850 9850 3250 400 11100 1150 3650 2750 800 2900 4350 2400 192 166 191 245 235 279 302 239 283 205 200 90 266 101 92 303 175 225 101 296 277 262 328 160 266 104 347 396 475 203 536 58 20 301 49 22 95 184 383 87 442 68 38 133 179 64 167 84 104 25 111 137 58 98 92 463 149 70 153 169 285 100 69 54 134 223 134 64 49 93 169 591 85 85 12 766 93 70 95 91 1 127 419 857 100 601 182 403 78 114 56 87 139 321 231 45 526 68 162 183 30 190 153 47 15 12 21 21 23 24 21 11 16 14 14 10 14 2 7 22 9 19 11 21 18 20 31 13 19 9 23 21 23 19 64 2 0 50 5 0 0 3 17 0 21 5 0 13 22 4 1 2 10 1 2 2 4 9 5 13 11 4 16 16 15 7 1 3 2 14 5 0 6 0 20 54 7 2 0 8 6 6 4 8 0 8 29 69 0 57 14 25 8 13 8 9 20 24 7 0 24 3 9 5 3 6 9 4 209 66 186 273 167 312 201 135 158 197 184 115 189 15 46 383 117 255 61 298 287 306 423 178 262 52 355 314 470 321 729 16 32 659 30 21 4 21 211 0 220 39 8 162 178 29 23 14 108 7 13 12 38 73 35 165 63 37 160 226 119 39 6 36 43 121 35 25 47 1 172 816 104 17 0 80 55 37 24 45 0 96 465 947 6 892 96 218 81 101 98 88 228 169 43 8 385 20 68 31 41 37 54 31 1160 1841 1203 2025 1961 2685 2059 987 2325 1544 1100 678 2040 52 138 2451 352 1765 875 2781 2679 2501 3024 1107 2599 612 3773 4066 4029 525 2197 48 32 2256 131 26 20 100 479 17 706 124 10 308 924 464 53 139 499 26 108 56 115 244 207 412 187 89 259 360 314 119 25 78 121 354 109 62 79 2 795 3832 441 61 3 224 143 96 49 149 0 495 1962 4412 16 3195 374 790 132 579 281 228 560 626 211 26 1402 80 237 218 61 586 171 51 BEISM.MIEDU/18.63.1.89 BEISM.MTrr.EW/18.63.1.89 BEISM.MIT.FEW3/18.63.1.89 EW/18.63.1.89 BETSYM.MIT. El/18.63.1.89 BETSM.MIT. EIJ/18.63.1.89 BEISYM.M1T. BEISYM.MT.EW/18.63.1.89 BETSYM.MIT.EIIJ/18.63.1.89 BETSYM.MIT.EW/18.63.1.89 ETSYM.MIT.EIJ/18.63.1.89 BEISM.MIr. E1W/18.63.1.89 BETSYM.MIT.EIFJ/18.63.1.89 BETSYM.MIT.EIJ/18.63.1.89 6 199.canbridg-06.nn.dial-access.att.net/12. 9 88.105.199 6 199.canbridge-0 .nn.dial-access.att.net/12.6 .105.19 BETSYM.MIT.EW/18.63.1.89 68 .105.199 199.canbridge-06.na.dial-access.att. net/12. EW/18.63.1.89 BETSYM.MIr. BEISM.MITr. EW/18.63.1.89 BETSYM.MIT.EW0/18.63.1.89 BETSYM.MIT.EIJ/18.63.1.89 BETSYM.MIT.EWU/18.63.1.89 BETSYM.MIT.EW/18.63.1.89 63.1.89 BETSYM.MIT.E/18. 89 BEISYM.MIT.EJ/18.63.1. E[J/18.63.1.89 BETSM.MIT. BETSIYM.MIT.EIJ/18.63.1.89 BETSYM.MIT. EIU/18.63.1.89 EI3J/18.63.1.89 BETSM.MIT. kirk09-7.accesone.com/209.43.129.151 kirk09-7.acconoe.can/209.43.129.151 ex794947-a.phnx3.az.hane.can/24.1.193.25 7 07 cooper.media.mit.edu/18.85.21. frutiger.media.mit.edu±/18.85.21. 2 194.68.71.65/194.68.71.65 douze.meca.polyntl.ca/132.207.40.22 ocis.astro.uni.edu/129.2.163.239 0 4 1.444 dynlOlpp44.pacific.net.sg/210.24.1 24 .101. dyn101ppp44.pacific.net.sg/210. abs404.nmntganery.kl2.va.us/198.82.215.100 24 44 2 10. .101. dynlOlp44.pacific.net.sg/ 199.212.60.58/199.212.60.58 grunblO.stud.kvl.dk/130.225.189.44 du124-5.ppp.algonet.se/195.100.5.124 ts72ip88.cadvision.can/207.228.76.88 ns.fkgb.fr/195.115.8.113 205.169.77.97/205.169.77.97 eq002.equinox1t.a195.12.166.2 eq002.equinox1t.caW195.12.166.2 eq002.equinox1t.caV195.12.166.2 32 .1 7 adair.qwest.net/204.154.2 9 shinto.twofish.o-n208.211.96.1 ger.nhn.ac.uk/157.140.3.96 gere.nhrn.ac. uk//157.140.3.96 stickybun.twofish.canV208.211.96.178 gens.nhn.ac.uk/157.140.3.96 shinto.tnfish.ano208.211.96.179 7 9 shinto.twofish.canV208.211.96.1 port233.ster.prodigy.net/204.237.138.233 port233.ster.prodigy.net/204.237.138.233 gens.nn.ac.uk/157.140.3.96 th-p±C3-06.ndirect.co.uk/195.7.225.134 th-pr03-06.ndirect.co.uk/195.7.225.134 th-pr03-06.ndirect.co.uk/195.7.225.134 M12-182-21.MIT.EDU/18.19.0.52 spxlgun.isocor.ie/194.106.154.128 195.103.245.230/195.103.245.230 7 .125 randarwalk. randaroalk.caV206.25.187.125 afroblue.zedat.fu-berlin.de/160.45.11.60 frutiger.media.mit.edu/18.85.21.72 igarashi.media.mit.edu/18.85.21.69 72 frutiger.media.oit.edu/18.85.21. 9 9 .21 unknown-35-6.nwhe.can/206.189.35.6 unkown-35-6.nwhe.cn/206.189.35.6 6 8 3 6 unknown-35-6.nwhe.con/20 .1 9. 5. 208.128.99.234/208.128.99.234 208.128.99.234/208.128.99.234 208.128.99.234/208.128.99.234 hermds.media.mit.edu/18.85.23.17 hermis.media.mit. edu/18.85.23.17 208.14.202.112/208.14.202.112 208.14.202.112/208.14.202.112 brat5200-51.netconnect.can. au/203.7.198.91 tc4-42.utah-inter.net/208.14.202.112 209.67.71.100/209.67.71.100 172-133-241.ipt.aol.ccn/152.172.133.241 206.109.88.62/206.109.88.62 206.109.88.62/206.109.88.62 206.109.88.62/206.109.88.62 206.109.88.62/206.109.88.62 206.109.88.62/206.109.88.62 224.cambridge-06.r.dial-access.att.net/12.68.105.224 2 24 2 68 . .105. 224.canbridge-06.m.dial-access.att.net/1 195.4.27.34/195.4.27.34 1Cust76.nax26.chicago.il.ms.uu.net/153.35.111.76 8 .14 user-381coge.dialup.mindspring.can/209.86.9 dt01q0n8e.nycap.rr.oca204.210.164.142 ts78ip167.cadvision.canV207.228.113.167 ts78ip167.cadvision.caV207.228.113.167 ts78ip167.cadvision.cm/207.228.113.167 3 34 7 4 64 ca.n.uu.net/15 . . .1 1Cust36.nmx6.los-angeles. MAHLO.MIECT.EI/18.242.2.23 1695 1696 1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719 1720 1721 1722 1723 1724 1725 1726 1727 1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740 1741 1742 1743 1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764 1765 1766 1767 1768 1769 1770 1771 1772 1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790 1791 1792 1793 1794 1795 1796 1797 1798 M M GLOM:InformationAgglomerates on/206.25.18 conovergis.ci.conaver.nc.u/198.252.16 112 date time score duration baddies hits shots ip 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980416 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 12:56:29 AM 12:57:57 AM 12:58:55AM 1:58:59AM 4:51:58AM 6:40:35AM 7:22:30AM 7:33:53AM 7:37:45AM 7:38:28AM 7:40:27AM 7:42:08AM 8:08:54AM 8:14:42AM 8:23:08AM 8:47:25AM 8:48:55AM 8:52:42AM 8:54:46AM 9:03:36AM 9:16:21AM 10:34:34 AM 11:48:47 AM 11:58:46AM 12:00:11 PM 12:10:36 8M 12:13:07R9 12:14:498M 12:16:461M 12:30:0704 1:00:408M 1:02:06 FM 1:21:030M 1:21:52EM 1:49:09EM 1:55:378M 2:59:590M 3:02:311M 3:05:01 R4 3:05:1684 3:09:0384 3:12:29EM 3:16:1304 3:16:388M 3:18:018M 3:19:08 8M 3:20:2984 3:21:528M 3:24:16 0M 3:26:09FM 3:27:34PM 3:28:51PM 3:30:0084 4:05:108M 4:46:29 0M 6:47:33 084 7:46:178M 8:28:268M 8:58:5881 9:03:4584 9:11:0484 9:19:4084 9:20:228M 10:13:018M 11:22:398M 11:55:138M 11:57:018M 11:59:050M AM 12:06:10 12:13:33AM 2:20:41AM 2:37:47AM 4:22:06AM 4:34:58AM 9:01:03AM 9:10:46AM 9:56:16AM 10:06:02 AM 10:07:44 AM 10:16:37 AM 10:25:11 AM 10:25:59 AM 10:28:21 AM 10:29:43 AM 10:40:30 AM 10:40:30 AM 10:42:42 AM 11:16:33 AM 11:19:46 AM 11:41:42 AM AM 11:49:41 12:00:3384 12:06:318M 12:29:45 R4 12:34:21 0M 12:38:05 0M 12:38:18 PM 12:41:59 12:57:160M 1:02:00R4 1:05:12 8M 1:10:50 FM 1:12:28PM 2:24:00PM 0 4700 11200 3000 3150 16100 11500 27050 0 150 3550 27300 26850 12050 0 7850 1200 4950 7100 7700 5300 0 100 400 1850 2400 3650 5650 2750 29650 0 2250 500 250 2950 5850 3050 7900 5050 2550 9050 8100 4100 6800 3350 3200 2250 3100 4950 6650 4250 5050 4050 18450 1200 600 7750 1350 3150 7350 0 3900 450 0 1000 450 3650 0 3000 1550 26550 29600 4050 0 10900 12750 0 300 2400 26700 250 50 3600 1850 0 700 5250 600 1050 3800 14050 15250 10350 14850 11950 9700 0 12100 6750 7150 5650 9150 2650 3500 4 76 260 97 79 540 361 612 17 27 97 302 735 330 2 345 54 195 249 252 161 66 22 18 69 101 136 223 205 605 101 39 188 31 121 251 72 124 106 85 203 191 80 174 72 52 65 67 128 97 70 62 53 411 46 30 276 442 160 254 28 196 28 16 47 58 92 84 65 63 1114 1013 222 4 676 567 5 32 87 665 33 29 127 65 3 71 128 150 109 164 465 334 169 350 261 208 59 189 266 268 175 320 81 62 0 10 20 5 5 31 21 44 0 0 10 44 41 23 0 16 2 10 13 15 14 0 0 0 7 4 9 14 11 52 0 3 2 1 7 12 6 16 9 7 18 17 10 17 9 10 9 11 11 14 8 9 7 39 2 1 18 2 7 15 0 8 1 0 2 0 6 0 5 2 40 52 9 0 25 30 0 0 4 41 0 0 13 5 0 0 13 1 4 7 27 33 26 29 24 20 0 24 17 18 11 19 5 7 0 70 317 33 33 521 328 678 0 4 113 751 726 345 0 193 12 115 137 173 102 5 2 8 97 26 100 91 93 842 0 27 44 22 82 135 37 190 87 74 222 185 109 212 109 117 99 90 63 166 84 87 45 529 12 6 148 50 45 124 0 85 33 0 16 14 49 0 37 19 778 844 56 0 278 312 0 7 43 759 5 5 134 90 0 15 116 6 75 48 393 475 311 602 494 337 0 464 177 157 115 205 52 65 2 212 442 86 127 1008 679 1225 1 4 378 2052 1451 714 0 488 31 379 312 517 564 13 5 19 183 80 737 388 509 2794 12 83 48 22 174 533 534 640 1136 343 582 433 281 367 252 349 186 327 685 376 268 200 125 1931 34 12 699 718 121 286 2 278 70 0 46 30 116 0 101 68 2788 2436 241 0 1559 1423 0 21 122 1432 19 34 412 591 0 68 360 124 148 319 942 2014 916 2255 1721 1292 11 1161 396 593 307 688 108 107 ratbert.eeco.wsu.edu/134.121.67.20 ratbert.eecs.wsu.eldu/134.121.67.20 2 48 vally.eecs.wsu.edu/134.121.66. page-204.caltech.edu/131.215.88.204 130.89.23.157/130.89.23.157 2 0 24 2 0 23 5 1 24 . .1 53 . dyn120pp235.pacific.net.g/ .111. dyn11±lp53.pacific.net.sg/210. dyn111p±p53.pacific.net.sg/210.24.111.53 193.15.96.145/193.15.96.145 193.15.96.145/193.15.96.145 193.15.96.145/193.15.96.145 2 7 8 cooper.nioda.mit.edu/1 .85. 1. 0 dynl20ppp9l.pacific.net.ag/210.24.120.91 2 2 10. 4.120.91 dyn120pp91.pacific.net.sg/ dyn120ppp91.pacific.net.sg/210.24.120.91 26 9 8 dynl26rspl98.pacific.net.sg/210.24.1 10 24 26 .1 8 2 . .1 .19 dyn126ppp198.pacific.net.sg/ dyn126ppp198.pacific.net.g/210.24.126.198 194.184.87.12/194.184.87.12 dyn126ppp198.pacific.net.sg/210.24.126.198 7 9 o79.denhaag.bart.nl/194.158.172. 207.144.100.251/207.144.100.251 fw2.torolab.ihn.canV199.246.40.199 fw2.torolab.ihn.canV199.246.40.199 fw2.torolab.in.can/199.246.40.199 3 6 34 24 calvin.wsc.nass.edu/1 . 1.8 3 . 0 calvin.wsc.nass.edu/134.241.8 43 20 8 .60 33 00 0 .net/ dialup-428.global2 3.1 .1 .198 3 24 calvin.wnass.edlu/1 4. 1.8 .60 tc4-25.utah-inter.net/208.14.202.95 0 taikanatto.kuva.fi/193.167.128.10 194.200.53.247/194.200.53.247 alice.eecs.wsu.edu/134.121.67.22 aie.eecs.wsu.edu/134.121.67.22 47 pc18-lib.tayhs.granite.kl2.ut.us/205.124.35.1 pcl8-lib.tayhs.granite.k12.ut.us/205.124.35.147 baby.DrnnO.bcIU.ed±u.tw/140.113.123.5 baby.IrD1nO.CIU.ediu.tw/140.113.123.5 baby.Ibrm10.1I.edu.tlw/140.113.123.5 3 3 246 6 6 0 4.1 . . proxyl60.inmet.ocan2 proxyl60.inmet.cc/V204.133.246.66 proxy160.inmet.cot/204.133.246.66 33 2 proxy160.inet.ccm/204.1 . 46.66 port201.str.prodigy.net/204.237.138.201 proxyl60.inmet.ccm204.133.246.66 proxy160.inmet.cca/204.133.246.66 proxyl60.imenet.cco/204.133.246.66 4 33 24 6 6 .1 . .6 66 proxy160.imsnet.a-v/20 proxyl60.inmet.cn/204.133.246. prxyl60.imanet.co/V204.133.246.66 33 24 6 6 . .6 proxy160.inmoet.cn204.1 proxl60.inmsnet.co/rt204.133.246.66 33 24 6 .66 . proxy160.iumet.cco/V204.1 205.181.121.144/205.181.121.144 PRIVEr.lT.KU/18.63.0.184 kirby.media.mit.edu/18.85.21.34 7 1 nantis.eecs.wu.du/134.121.65. dt083n5d.san.rr.cco/204.210.25.93 daga2pp67.alltel.net/166.102.118.68 66 2 .10 .118.68 daga2rp67.alltel.net/1 n±depster5.sp.'I4.CJ4/129.193.35.86 146.49.212.43/146.49.212.43 146.49.212.43/146.49.212.43 oak-alg-w3-17.ncal.verio.coV207.21.138.144 pn19.cs.washington.edu/128.95.8.173 dial-167.nitnet.ccm.br/200.255.111.167 dial-167.nitnet.ccm.br/200.255.111.167 dial-167.nitnet.cco.br/200.255.111.167 7 dia-167.nitnet.can.br/200.255.111.16 7 dial-167.nitnet.can.br/200.255.111.16 dyn76ppp247.pacific.net.sg/210.24.76.247 7 7 dyn76ppp247.pacific.net.sg/210.24. 36.24 7 .230.22.219 c219-cisc028.stancn.caV20 awo11.kyamk.fi/193.167.56.111 2 6 dyOn105pp216.pacific.net.og/210.24.105. 21 2 4.105. dynlO5pp2l6.pacific.net.og/210. 4 216 .105. 16 dyn105ppp216.pacific.net.sg/210.2 7 7 4 ppp-20 -2 5-107-10.dbikel.static.oldcity.dca.net/207.245.10 .10 ppp-207-245-107-10.dbikel.static.oldcity.dca.net/207.245.107.10 dynl26ppp5.pacific.net.og/210.24.126.5 f1ock.auvican.n1/195.240.45.200 flcck.auviccm.n1/195.240.45.200 flock.auvioa-m.nl/195.240.45.200 flock.auvi~o.n1/195.240.45.200 2 34 8 kirby.media.it.edu/1 .85. 1. 7 user-37kba31.dialup.mindspring.ccn/207.69.168.9 7 user-37kba31.dialup.mindspring.ca/207.69.168.9 199.6.62.24/199.6.62.24 199.6.62.24/199.6.62.24 92 2 . 6 166-92-26.ipt.aol.can152.166. 166-92-26.ipt.aol.can/152.166.92.26 zinba.eecs.wsu.edu/134.121.67.25 67 2 . 5 zinba.eecs.wsu.edu/134.121. 7 .25 zinba.eecs.w.oelu/134.121.6 znhba.eecs.wsu.edu/134.121.67.25 zimba.eecs.wsu.edu/134.121.67.25 troll.studi.unizh.ch/130.60.73.11 ziba.eeco.wsu.edu/134.121.67.25 24 9 249.new-york-12.ny.dial-access.att.net/12.68.11. 249.new--york-12.ny.dial-access.att.net/12.68.11.249 249.new-york-12.ny.dial-access.att.net/12.68.11.249 249.ne-york-12.ny.dial-access.att.net/12.68.11.249 249.new-york-12.ny.dial-access.att.net/12.68.11.249 7 7 20 6 .66.. 1 cor02-6.ppp.iadfw.net/ M GLOM:Information Agglomerates address of player id# 1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826 1827 1828 1829 1830 1831 1832 1833 1834 1835 1836 1837 1838 1839 1840 1841 1842 1843 1844 1845 1846 1847 1848 1849 1850 1851 1852 1853 1854 1855 1856 1857 1858 1859 1860 1861 1862 1863 1864 1865 1866 1867 1868 1869 1870 1871 1872 1873 1874 1875 1876 1877 1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894 1895 1896 1897 1898 1899 1900 1901 1902 113 date time 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980417 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980418 980419 980419 980419 2:34:33 1M 2:35:34PM 2:37:15FM 2:48:051M 2:54:321M 2:57:510M 2:58:418M 3:18:1584 3:46:31R4 4:09:06FM 4:13:00EM 5:44:17EM 5:46:578M 5:47:058M 5:48:55HM 5:52:268M 6:17:5884 6:25:1584 6:29:188M 6:30:4884 6:39:1684 6:43:14HM 6:45:35HM 6:47:17HM 6:47:54HM 6:4814 HM 6:54:55HM 7:01:42HA 7:02:17HA 7:08:25 HM 7:29:46HM 7:36:37HM 7:39:05 8:46:57 9:22:13 9:27:48 9:37:32HA 9:51:16HA HM 10:09:43 10:09:51 HA 10:11:45HM 11:08:12HM 11:10:49HA 11:13:21HM AM 12:49:08 12:51:37 12:52:28 AM AM 12:53:23 1:53:10AM 3:00:38AM 3:14:48AM 6:20:51AM 7:41:08AM 8:48:23AM 10:04:27 AM AM 10:35:52 AM 10:46:06 AM 10:51:36 AM 10:53:36 12:32:02HA 12:46:18HA 12:47:52HA 2:27:52HM 2:28:38HM 2:31:57 2:32:42HM 2:34:13HM 2:35:07HM 2:36:14HM 2:37:52 2:38:44HA 2:39:52HA 2:40:18HA 2:42:22HA 2:55:32HA 3:10:20HA 3:13:02HM 3:56:25HM 4:24:09HM 4:39:09HM 4:43:56HA 4:53:46 5:00:22HM 5:56:47 6:06±09 6:11:32 HA 6:29:10 HA 6:30:44 6:32:31 HA 6:43:10HA 7:45:24HA 7:49:34HM 8:19:19HA 9:27:52HM 9:30:34HA 9:34:38HA 10:03:08 HM 10:14:00 HA 10:15:06 10:27:57 11:08:34 AM 12:12:37 AM 12:15:08 AM 12:16:42 M M M M M M M M M M M M M M score 3800 1350 3950 4850 9450 2900 250 9550 1350 1700 7750 3050 4700 1050 8450 8400 2850 0 10600 26900 29400 9350 4450 10200 28850 3800 28100 28650 2850 0 0 4500 5150 13550 11150 9500 5100 600 3600 0 5350 2250 5650 4700 4700 4650 1500 1500 0 50 2350 0 6550 0 5150 8950 4950 8400 5050 4000 2700 3700 14050 1450 4350 3400 3750 5200 5000 1150 6400 2250 5150 6250 4650 4500 7150 5000 2650 13050 2250 3850 31600 200 4700 13650 2800 1950 3500 0 15450 9350 16000 3250 4050 6100 1800 13750 31350 16500 2850 4850 3900 28500 duration 215 44 86 229 230 117 25 346 82 60 219 76 227 172 262 311 87 7 226 445 447 217 174 227 455 142 408 386 109 36 34 122 128 395 315 319 159 22 89 3 99 103 196 135 122 133 34 37 18 65 161 98 282 98 150 188 129 314 102 195 103 79 274 100 130 78 75 171 103 99 194 103 115 115 179 125 144 158 153 245 173 84 470 89 127 307 123 79 90 165 693 227 381 111 146 228 266 421 554 493 105 256 136 445 GLOM:Information Agglomerates baddiss hits 8 5 8 11 23 6 0 22 2 5 17 5 11 4 17 21 5 0 27 46 51 22 11 24 49 8 46 47 6 0 0 9 14 31 20 19 12 1 6 0 13 7 20 9 11 11 6 2 0 0 8 0 16 0 12 14 11 18 9 9 5 6 27 3 9 8 8 12 13 4 17 9 15 18 11 9 12 11 5 25 8 7 60 0 10 22 5 3 7 0 46 21 30 6 10 16 3 36 59 35 5 10 10 49 46 51 49 89 193 34 5 205 17 29 196 33 111 60 180 157 33 0 208 766 816 165 82 218 767 46 710 723 61 1 0 83 127 363 253 274 87 6 50 0 96 92 161 89 66 97 48 40 0 24 87 15 105 0 71 189 73 162 75 53 36 40 329 83 52 69 63 81 138 63 163 113 147 163 95 132 159 68 32 346 100 58 825 34 88 323 32 35 97 3 363 244 390 41 87 144 42 397 819 538 33 82 88 676 shots 170 114 149 395 467 418 31 692 84 109 340 129 710 221 1243 1044 214 0 1342 2694 2686 1260 688 1578 2512 679 2466 2123 123 39 0 385 378 1235 576 662 775 25 140 2 322 291 332 225 268 595 131 76 0 70 234 16 505 20 194 237 220 500 193 191 185 111 1008 266 215 181 139 355 663 146 579 338 839 687 353 300 463 660 114 1352 497 136 3567 105 216 666 131 90 160 8 2704 660 1087 178 285 1652 186 1079 2572 1414 140 229 240 1230 ip address of player id# s148.nc2-car.ccan/204.107.238.148 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912 1913 1914 1915 1916 1917 1918 1919 1920 1921 1922 1923 1924 1925 1926 1927 1928 1929 1930 1931 1932 1933 1934 1935 1936 1937 1938 1939 1940 1941 1942 1943 1944 1945 1946 1947 1948 1949 1950 1951 1952 1953 1954 1955 1956 1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967 1968 1969 1970 1971 1972 1973 1974 1975 1976 1977 1978 1979 1980 1981 1982 1983 1984 1985 1986 1987 1988 1989 1990 1991 1992 1993 1994 1995 1996 1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 s148.nr2-esr.ccan204.107.238.148 8 s148.nr2-car.cm204.107.238.14 38 4 8 7 .2 .1 s148.n2-car.can/204.10 s148.nr2-cr.can/204.107.238.1486 8 4.12 lCostl2B.tntl.det3.da.uu.net/208.254. 1Cust128.tntlO.det3.da.uu.net/208.254.64.128 208.137.84.48/208.137.84.48 43 noss243.c io.can207.251.15.2 165.29.121.246/165.29.121.246 165.29.121.246/165.29.121.246 7 ge.nedia.mit.edu/18.85.11.1 5 scient.media.mit.edu/18.85.11.177 s2n±33.dialup.HAIH-Aachen.rE/137.226.3.33 ge.nedia.it.edu/18.85.11.175 77 8 5.11.1 scient.media.mit.edu/18. tcl-25.utah-inter.net/208.14.200.35 7 ge.nedia.rit.edu/18.85.11.1 7 5 5 ge.media.mit.edu/18.85.11.1 tcl-25.utah-inter.net/208.14.200.35 tcl-25.utah-intr.net/208.14.200.35 ge.mEodia.mit.edu/18.85.11.175 175-147-153.ipt.aol.can/152.175.147.153 7 5 ge.media.mit.edu/18.85.11.1 tcl-25.utah-inter.net/208.14.200.35 175-147-153.ipt.ol.ccan/152.175.147.153 tcl-25.utah-inter.net/208.14.200.35 tcl-25.utah-inter.net/208.14.200.35 22 7 A17-202-12-122.apple.cca/1 .202.12.1 A17-202-14-79.apple.can/17.202.14.79 0022SEL.BICS.UIC.EDJ/131.193.234.119 33 96 7 7 .19.1 . fctnts06c42.ntnet.nb.ca/20 fctnt906c42.nbnet.nb.ca/207.179.133.96 p164.snbeach.net/205.214.199.186 DIALUP55.73IL.USIT.NET/208.24.80.55 DIAUP55.IL.USIT.NET/208.24.80.55 7 1.238 ts238.wnet.org/205.133.1 brap.conectnet.can/207.110.0.58 circ-ras2-1-co-11.dial.bright.net/209.143.14.115 circ-ras2-1-cs-11.dial.bright.net/209.143.14.115 ciro-ras2-1-cs-11.dial.bright.net/209.143.14.115 2 dialup-B089.europa.o-v/204.2073 .55.89 4 9 39 173-149-39.ipt.ol.can/152.1 73 .1 4 9 .39 .1 . 173-149-39.ipt.ol.can/152.1 dialup13.nvt.net/207.3.71.122 dialup13.nvt.net/207.3.71.122 2 7 7 .3.1.12 dialup13.vt.net/20 dialup13.nyt.net/207.3.71.122 s34-px0l.gatech.carpu.nci.net/168.14.1.53 209.60.126.45/209.60.126.45 userl09.ascep2.snowl1l.cm/208.134.11.118 mino-casl-cs-8.newnorth.net/208.155.6.202 156-195.butte.cc.ca.us/198.189.156.195 167.152.154.183/167.152.154.183 207.245.233.91/207.245.233.91 199.6.62.24/199.6.62.24 DIA1iP43.IMDIL.USIT.NEr/208.24.80.43 DIAU1P43.TEIL.USIT.NET/208.24.80.43 DIAL1P43.ThDIL.USIT.NET/208.24.80.43 pr02-46.sac.ns.net/209.162.64.65 3 4 6 88 .35.16 .188 102stlB8.tnt12.tou2.da.uu.net/15 .1 1Cust188.tntl2.tco2.da.±.unet/153.35.14 69 8 5.21. igarashi.nedia.nit.edu/18. 7 2 22 8 . .1 .dialup.online.n/130.6 tiO01aO9-005 tso002d10.-tn.oncentric.net/206.83.83.70 circ-ras1-4-cs-18.dial.bright.net/209.143.14.96 circ-rasl-4-cs-18.dial.bright.net/209.143.14.96 ts002d10.nmw-tn.conctric.net/206.83.83.70 circ-rasl-4-cs-18.dial.bright.net/209.143.14.96 van-as-02a09.direct.ca/204.174.248.57 ts002d10.non-tn.coetric.net/206.83.83.70 v-as-02a09.direct.ca/204.174.248.57 circ-rasl-4-cs-18.dial.bright.net/209.143.14.96 circ-rasl-4-Cs-18.dial.bright.net/209.143.14.96 cs-15.pot.ptd.net/204.186.34.15 8 7 custcas543.ipass.net/20 .120.205.10 custcs543.ipass.net/207.120.205.108 ibb0224.ibb.ruu.nl/131.211.124.224 87 tc2-30.riverfalls.Spacestar.Net/206.191.194.1 igarashi.nedia.mit.edu/18.85.21.69 dt083n5d.san.rr.co/204.210.25.93 8 6 8.3 .205 ppp13.annex1.stip.net/194.1 igarashi.media.mit.edu/18.85.21.69 8 76 dynmic-48.media.nit.edu/18. 5.12.1 DIA.N3IL.2UIT.NET/208.24.80.6 DIA19. 1IL.USI.NET/208.24.80.6 olip129-37-121-61.n.us.ihn.onet/129.37.121.61 37 -121-61.mo.us.ihn.net/129.37.121.61 slipl291 29 slip -37-121-61.mo.us.ihn.net/129.37.121.61 84 6 .2 2 37 slipl9- -119-162.nc.s.ihn.net/129.37.119.162 slip129-37-119-162.nc.us.ihln.onet/129.37.119.162 tc1-115.utah-inter.net/208.14.200.125 134.132.207.131/134.132.207.131 134.132.207.131/134.132.207.131 134.132.207.131/134.132.207.131 anex-d-5.nedia.mit.edu/18.85.14.222 dialinO9.internetl.net/206.250.31.209 tc3-11.utah-inter.net/208.14.202.21 dialin09.internetl.net/206.250.31.209 Dc.MIT.EDU/18.232.0.7 ipl03.vegas.quik.ca/207.38.35.103 7 3 3 .38. ipl03.vegas.quik.ccnV20 3 5.10 4 glum.ndia.mit.edu/18.85.25. sdn-ts-001lcoviP07.dialsprint.net/206.133.1 114 date 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980419 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 980420 time 12:29:51 AM 12:30:54AM 12:32:18AM 12:33:27AM 12:33:32AM 12:36:49AM 2:19:34AM 2:21:17AM 2:22:47AM 2:41:21AM 5:05:28 AM 5:07:32AM 5:27:13AM 5:32:00AM 6:55:14AM 7:23:26AM 7:35:22AM 9:02:19AM 12:07:262M 12:17:548M 12:28:062M 12:33:2424 12:36:492M 12:46:41FM 12:51:282M 12:57:472M 1:52:06 4 2:05:2824 2:12:57 2:31:21 2:44:0324 4:41:482M 4:48:412M 5:19:292M 7:37:592M 8:07:512M 8:12:122M 8:30:302M 8:32:1024 8:37:4524 8:46:4324 9:28:5224 9:30:1424 9:32:432M 9:34:0324 9:35:072M 11:28:36 2:41:13AM 3:51:30AM 4:28:05AM 5:07:04AM 5:23:41AM 6:57:45 AM 7:08:34AM 7:20:12AM 7:33:41AM 7:36:15AM 7:40:23AM 7:50:57 AM 8:31:28AM 8:38:17AM 8:41:51 AM 8:44:00AM 8:44:08AM 8:45:21AM 8:45:34AM 8:57:32AM 8:57:56 AM 9:03:33AM 9:34:19AM 9:35:47AM 9:47:46AM 9:52:42AM AM 10:17:37 AM 10:56:06 AM 11:18:25 11:51:15 AM 12:11:262M 12:11:332M 12:13:232M 12:41:41 12:42:312M 12:47:05 2M 1:28:552M 1:30:1224 3:05:15 24 3:06:5524 3:10:482M 4:34:3624 6:39:2624 6:46:3424 6:56:15 24 7:01:292M 7:16:40 8:23:4924 8:43:102M 8:54:342M 8:55:3724 8:58:4024 9:02:592M 9:07:122M 9:17:4824 10:35:092M 10:37:332M M M M M M scor. 400 1300 3950 3650 2800 4900 3550 3250 4300 3250 0 1050 4150 10950 0 0 7100 1050 2550 7250 6150 8750 6400 3200 5450 8000 8500 5400 29350 22600 15700 3800 7200 8150 700 3050 7200 6500 4650 9200 11350 1250 2100 14250 4650 1250 350 8850 2800 4850 8350 1200 1050 1800 5400 14200 6100 9050 200 750 3000 4850 3700 2300 2000 3850 0 0 2850 2200 7650 2900 1050 5350 50 600 500 1500 4600 1500 2800 1200 2950 1150 650 5550 2400 9650 0 3750 3050 6850 4850 4200 29850 5550 1100 900 3400 4750 6950 8000 2050 5050 duration 43 21 68 115 58 190 113 88 176 226 131 110 112 275 52 13 272 60 128 614 411 300 187 246 265 323 398 266 606 1536 740 113 179 255 64 134 245 261 191 320 369 88 66 537 214 49 627 177 160 148 208 56 115 78 334 533 138 190 65 121 48 199 112 160 48 74 3 1 230 269 153 111 136 382 55 113 124 62 144 55 160 62 104 113 61 177 183 291 8 102 283 564 295 103 544 267 174 46 165 236 237 163 59 129 GLOM:Information Agglomerates baddies 0 2 9 9 7 18 8 10 11 6 0 2 11 27 0 0 19 1 4 21 18 34 23 7 16 26 25 14 51 75 38 8 13 17 1 6 17 17 10 27 37 2 8 43 13 5 1 20 5 11 18 2 3 3 13 28 16 20 0 3 5 11 9 5 7 9 0 0 5 4 14 6 1 13 0 1 2 6 9 6 5 2 6 1 1 13 4 24 0 8 5 21 13 9 53 14 2 1 5 9 15 18 3 11 id# hits shots ip address of player 12 14 111 83 115 160 61 109 99 35 0 20 77 296 0 1 160 16 54 155 152 243 190 58 153 204 207 80 733 488 557 112 121 187 17 38 108 96 67 177 192 22 70 317 121 46 19 183 35 128 174 23 27 25 72 460 154 211 6 34 32 96 70 68 92 72 0 0 33 31 148 34 23 86 1 9 10 48 111 49 41 12 58 18 7 138 26 216 0 51 34 159 91 88 745 124 30 14 40 101 124 186 30 73 29 31 440 443 540 1086 241 186 450 908 18 165 547 1502 3 1 599 63 105 1937 1407 1715 770 568 1046 1330 1859 1139 4226 4860 3467 191 213 382 46 69 242 288 812 2026 1677 84 168 1130 326 134 62 513 520 349 529 73 62 84 1061 2371 919 718 9 164 80 549 444 736 150 385 0 0 118 189 296 511 67 365 36 18 29 83 234 94 175 89 768 62 28 400 61 803 0 195 159 1315 762 201 3767 499 96 21 109 197 334 402 47 358 2007 GS141.SP.CS.CMJ.KU/128.2.203.153 2008 GS141.SP.CS.QU.EIU/128.2.203.153 2009 GS14l.SP.CS.OU.EDJ/128.2.203.153 2010 GS16.SP.CS.aU.KU/128.2.203.216 2011 GS141.SP.CS.OJ.EIJ/128.2.203.153 2012 GS16.SP.CS.C2U.EIU/128.2.203.216 2013 ip77.an3-new-york4.ny.pub-ip.psi.net/38.26.14.77 2 2 2014 29.16 ppp34a.nerlin.net.au/203.20. 2015 ip77.an3-new-york4.ny.pub-ip.psi.net/38.26.14.77 3 2016 0 dyn1-30.SanDiego.connectnet.ccm206.251.151. 2017 acyl-238.abo.wanadoo.fr/193.252.140.238 2018 ancy1-238.abo.wanaco.fr/193.252.140.238 2019 and-is&Ol-12.dial.xs4all.nl/194.109.46.13 2020 and-isdn01-12.dial.xs4all.nl/194.109.46.13 2021 ruche.ms-info.uvsq.fr/193.51.26.201 2022 bartlet.df.1th.se/194.47.252.146 2023 dialup-11-36.netccnuk.co.uk/194.42.230.228 2024 brok.ifi.uio.no/129.240.64.29 2025 p5-term3-mn.netdirect.net/204.248.214.94 4 24 8 2 4 4 2026 . . 1 .9 p5-term3-nun.netdirect.net/20 2027 dynamic-55.nedia.it.nedu/18. 85.12.183 2028 dynaic- 55.mv8dia.mit.eu/18. 85.12.183 2029 dynamic-55.me.dia.mit. edu/18.85.12.183 2030 dynamic-55.media.nit.edu/18.85.12.183 2031 dynaic-55.media.mit. edu/18.85.12.183 2 83 8 8 2032 .85.1 .183 dynam±ic-55.media.mit.edu/1 2033 dynamic-55.media.mit.edu/18. 5.12.1 2034 dynamic-5.mdia.mit.edu/18.85.12.133 2035 igarashi.media.m±it.edlu/18.85.21.69 33 2036 dynaric-5.media.mrit.edu/18.85.12.1 33 8 2037 dynamic-5.mdia.m-Lit.edu/18. 5.12.1 2038 195.198.30.20/195.198.30.20 2039 1Cust178.tntl.jacksonville.ar.da.uu.net/208.255.128.178 2040 s148.mc2-csr.ccn/204.107.238.148 34 2 2041 glum.media.mit.edu/18.85. 7 5. 2042 .51.85.117 pn3s17.shsemputer.cm/o20 2043 85.117 pn3s17.shscoupter.cra/207.51. 2044 nkiOO1.netknnect.net/208.198.32.98 87 2045 dynamic-59.nedia.mit. edu/18.85.12.1 2046 dynamnic-59.media.mit.edu/18.85.12.187 8 2 87 2047 5.1 .1 dynamic-59.nedia.rit.edu/18. 2048 209.116.228.37/209.116.228.37 2049 209.116.228.37/209.116.228.37 2050 2051 209.116.228.37/209.116.228.37 2052 209.116.228.37/209.116.228.37 2053 p43-53.tnt-2.ij.net/209.4.43.53 2054 pc19F8C66.dip.t-online.de/193.159.140.102 2055 fire.abo.fi/130.232.208.35 2056 194.223.233.40/194.223.233.40 2057 gate.uth.boras.se/148.160.250.12 2058 193.129.185.156/193.129.185.156 2059 sara.wu-ien.ac.at/137.208.107.101 7 2060 9.91 raf2l.iiic.ethz.ch/129.132.1 2061 edu/18.85.12.176 dynamrkic-48. media.m±it. 7 2062 dynamic-48.media.mit.edu/18.85.12.1 76 2063 dynamic-48.media.mit.edlu/18.85.12.1 6 2064 pc-33516.cn.rogers.wave.ca/24.112.34.115 2065 194.129.182.204/194.129.182.204 2066 jwf27.acan.m.1/137.246.14.245 2067 209.160.99.22/209.160.99.22 2068 209.160.99.22/209.160.99.22 2069 209.160.99.22/209.160.99.22 2070 209.160.99.16/209.160.99.16 2071 209.160.99.16/209.160.99.16 2072 209.160.99.22/209.160.99.22 2073 gwinston-isd-h-m.cio.can/171.68.166.90 2074 gwiston-isd-hcm.cisc. cl7l.68.166.90 2075 de±--10-13.dialup.netins.net/167.142.14.142 2076 A101015.sf0l.as.cr.oc/168.75.101.15 2077 AS52-06-34.aa-kitcheer.golden.net/209.183.129.34 2078 195.223.57.106/195.223.57.106 2079 Sanliegol-2.SanDiego.Accessl.net/207.104.109.155 2080 156-195.butte.cc.ca.us/198.189.156.195 2081 drag73208.stud.ntnu.no/129.241.73.208 2082 rfhsi8005.fh-regenshurg.de/194.95.108.67 2083 207.8.84.77/207.8.84.77 7 2084 balok.psrw. cc/199.99.166. 9 2085 pawnaig.resnet.uconn.edu/137.99.157.37 79 2086 balok.perw.ccm/199.99.166. 7 2087 3 iax-vidalia-pp064.iam±erica.net/207.101.55. 2088 dynadc-41. 2089 209.160.99.8/209.160.99.8 2090 EK2.PSY.6U.EIJ/128.2.248.58 2091 BK2.PSY.CHU.EIJ/128.2.248.58 2092 196-31-19-60.iafrica.ccV196.31.19.60 2093 davinci.math.duke.edu/152.3.25.30 2094 196-31-19-60.iafrica.ccn/196.31.19.60 2095 198.30.208.58/198.30.208.58 2096 dynamic46.pn09.n.best.ccuV209.24.242.46 2097 nax8.joplin84.getonthe.net/208.142.6.84 2098 nx8.joplin84.getonthe.net/208.142.6.84 2099 nex±.joplin84.getonthe.net/208.142.6.84 2100 199.201.192.150/199.201.192.150 2101 igarashi.nedia.mit.edu/18.85.21.69 2102 glacier21.ccdt.uscg.mil/199.211.149.21 2103 -08.nax±1.gvi.net/208.12.255.8 ±ndn1 8 2 2 2104 .1 . 55.8 ndn-08.nxl.gvi.net/20 2105 ndn1-08.naxl.gvi.net/208.12.255.8 2106 n±dl-08.nmx1.gvi.net/208.12.255.8 2107 n±dl-08.nex1.gvi.net/208.12.255.8 2108 dialup-117.publab.ed.ac.uk/129.215.38.117 2109 203.241.133.183/203.241.133.183 2110 203.241.133.183/203.241.133.183 adn-ts-003kylouiPO7.dialsprint.net/20 mEdia.it.edu/18.85.12.169 115 date time score duration baddies hits shots ip address of player id# 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980421 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980422 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980423 980424 980424 980424 980424 3:37:35 AM 5:40:24AM 5:49:14AM 5:59:23AM 5:59:36AM 6:08:31AM 6:10:06AM 6:27:55AM 6:28:11AM 8:30:59AM 10:16:36AM 1:17:09O4 1:39:49EM 1:44:23 1:44:30 1:45:31OH 1:46:39 1:47:38O 1:52:10OH 1:53:08OH 2:22:35OH 2:23:52OH 2:25:14OM 5:09:54 OM 5:28:24 OM 5:31:32 OM 5:58:07OM 6:15:47OM 6:15:56OM 6:19:45OM 6:26:49OM 6:34:36OH 6:49:04OM 6:51:34 7:04:18OH 7:05:58OH 8:13:52OM 8:24:55OH 8:27:50OH 8:40:32OM 8:42:57OH 9:21:08OM 10:28:52OH 10:30:05 1:10:51AM 8:13:00AM AM 11:17:54 AM 11:34:14 12:39:03 12:45:13OH 4:30:55OM 4:32:22OM 5:10:19OH 5:10:39OM 5:29:26OH 5:30:58OM 5:33:20 5:39:46OM 5:41:06OM 5:44:11OM 5:54:25OM 6:37:58OM 7:14:59OM 7:16:05 9:11:09 OM 10:32:39 11:57:10OM 12:36:32 AM 6:53:04AM 7:22:31AM 7:27:29AM 7:38:34AM 7:44:06AM 8:04:07AM 8:05:46AM 8:10:05AM 8:12:35AM 8:15:48AM 9:22:46AM 9:49:46AM 10:11:01AM 10:17:11AM 10:33:23AM 4:14:57OM 4:57:05OM 5:43:49OM 5:48:50 7:19:33OM 7:22:33OM 7:50:29OM 7:57:40OM 8:20:47 8:21:52 8:28:21OH 8:33:20 8:58:12OH 9:01:08 9:08:56OM 9:10:24OM 10:36:47OM 8:16:17AM 8:19:29AM 8:20:43AM 8:23:07AM 300 50 2000 50 0 5000 1600 500 5200 150 0 3900 3150 250 7400 500 1500 1000 3500 5550 3250 3700 2350 2900 2800 4850 450 0 9650 3750 2400 6350 3650 6900 6500 3300 0 1250 6450 9450 5050 0 7250 1900 1200 0 700 9300 11700 13400 600 850 4200 0 4450 4300 4700 29850 5800 6250 12400 10350 4050 2650 3000 250 0 0 4150 2400 4550 1800 2300 5350 2400 4100 6250 7350 2000 0 30250 28100 200 4450 31950 550 3500 2050 8200 3300 0 0 0 0 2700 0 0 0 600 650 15050 30050 7800 24600 310 109 385 45 603 113 79 22 136 86 215 206 63 41 264 47 55 44 255 139 123 141 49 71 108 164 46 3 1986 197 287 410 852 230 149 73 28 117 159 322 129 731 231 65 79 6 29 165 363 353 78 53 161 4 151 127 126 371 140 245 597 343 58 50 85 29 50 89 148 303 281 64 74 127 84 84 134 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0 0 21 148 0 0 0 9 80 774 1873 302 1085 IC)01590.reshall.uidaho.edu/129.101.139.107 192.116.226.209/192.116.226.209 192.116.226.209/192.116.226.209 7 .10 Iol.sic.se/193.220.7 192.116.226.209/192.116.226.209 192.116.226.209/192.116.226.209 192.116.226.209/192.116.226.209 glum.media.mit.edu/18.85.25.34 193.129.185.156/193.129.185.156 193.78.125.38/193.78.125.38 derf.cs.nu.ca/134.153.1.55 46 tcpac32.earthorld.ccs/198.145.145. 204.185.27.75/204.185.27.75 204.185.27.76/204.185.27.76 204.185.27.75/204.185.27.75 204.185.27.76/204.185.27.76 204.185.27.76/204.185.27.76 204.185.27.76/204.185.27.76 204.185.27.76/204.185.27.76 pc156.max4060.ftech.co.uk/195.200.17.157 206.222.71.16/206.222.71.16 195.242.45.65/195.242.45.65 195.242.45.65/195.242.45.65 user-381carO.dialup.mindspring.mn/209.86.43.96 nex8.joplin9O.getanthe.net/208.142.6.90 nex8.joplin9O.getonthe.net/208.142.6.90 wk05.bard.edu/192.246.229.60 porter.bevd.blacksturg.va.us/198.82.228.152 166.41.205.41/166.41.205.41 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nkay.media.nt.edu/18.85.21.80 89 h189.ozenill.ozeil.ccm.au/203.108.15.1 nekay.nedsia.mit.edu/18.85.21.80 n=kay.meqdia.mit.edu/18.85.21.80 pool-207-205-150-13.chia.grid.net/207.205.150.13 gagerpp2.ln.org/199.212.94.194 gageppp2.lcn.org/199.212.94.194 203.240.157.24/203.240.157.24 pp98.207.redestb.es/195.122.207.98 celerity.deton.co.uk/194.222.167.110 PPP-86-11.HJ.HUJ/128.197.8.191 33 2 66 9 .net/195.1.1 . 51 123.usrO4.shef.dialup.force castle.bank.lv/159.148.33.253 castle.bank.lv/159.148.33.253 castle.bank.lv/159.148.33.253 castle.bank.lv/159.148.33.253 castle.bank.lv/159.148.33.253 3 castle.bank.lv/159.148.33.25 3 8 33 castle.bak.lv/159.14 8 .33 .25 2 3 . . 5 castle.bank.lv/159.14 castle.bank.lv/159.148.33.253 7 7 2 62 .1 . .121 207-172-62-121.s121.tnt2.ra.erols.ccV20 dynafmic-43.media.mit.edu/18.85.12.171 dynam±ic-43.mdia.it.edAu/18.85.12.171 dynamic-43.mdia.mit.&lu/18.85.12.171 lost-120.oncretendia.cct/207.240.49.120 205.138.223.69/205.138.223.69 dynamic-16.nsdia.mit.edlu/18.85.12.144 A17-202-13-85.aople.om/17.202.13.85 7 7 7 0.10 .1 5 dyn-107-175.interval.cun/199.1 4 23 ppp-011.m2-16.tor.ican.net/142.15 4 .2 3.11 42 .15. .11 ppp-011.m±2-16.tor.ican.net/1 glumo.media.mit.edlu/18.85.25.34 glum.nedia.mit.edu/18.85.25.34 3 glum.nedia.mit.edu/18.85.25. 4 glum.nedia.mit.edu/18.85.25.34 glum.media.mit.edu/18.85.25.34 7 unknc 151-167.segasoft.can/206.189.151.16 glum.media.mit.edu/18.85.25.34 3 glum.media.mit.edu/18.85.25. 4 glum.media.mit.edu/18.85.25.34 glum.media.mit.edu/18.85.25.34 beowulf.ucsd.edu/132.239.17.2 frutiger.nedia.mxit.edu/18.85.21.72 frutiger.media.mit.edu./18.85.21.72 frutiger.nedia.m±t.edu/18.85.21.72 2 72 frutiger.nedia.miit.edu/18.85. 1. 2111 2112 2113 2114 2115 2116 2117 2118 2119 2120 2121 2122 2123 2124 2125 2126 2127 2128 2129 2130 2131 2132 2133 2134 2135 2136 2137 2138 2139 2140 2141 2142 2143 2144 2145 2146 2147 2148 2149 2150 2151 2152 2153 2154 2155 2156 2157 2158 2159 2160 2161 2162 2163 2164 2165 2166 2167 2168 2169 2170 2171 2172 2173 2174 2175 2176 2177 2178 2179 2180 2181 2182 2183 2184 2185 2186 2187 2188 2189 2190 2191 2192 2193 2194 2195 2196 2197 2198 2199 2200 2201 2203 2204 2205 2206 2207 2208 2209 2210 2211 2212 2213 2214 2215 M M M M M M M M M M M M M M GLOM:Information Agglomerates 116 date 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980424 980425 980425 980425 980425 980425 980425 980425 980425 980425 980425 980425 980425 980425 980425 960425 980425 980425 980425 980425 980425 980425 980425 980425 980425 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980426 980427 980427 980427 980427 980427 time 9:11:20 AM 10:19:11 AM 10:41:11AM 11:11:00 AM 11:15:46AM 11:18:48 AM 11:26:23AM 11:31:58 AM 11:37:03AM 11:39:05AM 11:42:34AM 11:45:01AM 11:47:33AM 11:50:43AM 11:51:50AM 11:52:48 AM 11:52:59AM 11:59:58AM 12:00:150M 12:02:02FM 12:05:02FM 12:05:27FM 12:12:29 rM 3:50:10FM 3:55:53FM 4:08:12 1M 4:29:26FM 5:31:52FM 5:34:36 FM 5:36:03FM 5:38:10 FM 5:39:30 FM 5:41:20FM 5:45:39FM 5:49:36M 5:52:55FM 6:12:50FM 6:14:41FM 6:48:50FM 6:52:21FM 6:52:31FM 6:57:03FM 7:51:23FM 7:53:03FM 8:29:00FM 8:31:11FM 8:49:54FM 8:52:03FM 10:43:45FM 10:44:19FM 10:45:59FM 10:46:45FM 1:24:47AM 5:57:31AM 6:07:19AM 6:14:43AM 6:24:46AM 6:52:30AM 6:55:15AM 6:56:33AM 6:57:46AM AM 11:21:01 3:21:57FM 4:13:55FM 4:15:50FM 4:32:02FM 5:13:35FM 5:29:25FM 5:32:55FM 5:34:59FM 5:38:08 FM 5:39:27FM 5:40:13FM 6:01:12FM 6:06:35FM 8:53:28 FM 12:04:58AM 12:14:58AM 12:16:21AM 12:51:58AM 12:58:16AM 1:01:32AM 7:13:03AM 8:10:00AM 1:03:10FM 1:04:01FM 2:05:46FM 2:06:01FM 2:22:18FM 2:34:55FM 4:30:54FM 6:43:43FM 6:45:38FM 6:46:29FM 6:47:31FM 6:50:09FM 6:56:54FM 6:57:10FM 7:32:27FM 6:31:12AM 7:11:06AM 7:11:29AM 7:12:13AM 7:12:51AM score 21300 3300 0 3400 3000 2600 15650 4350 8100 4050 0 7400 7500 8300 1200 8400 4300 22250 9250 8450 9900 8100 10750 37350 9650 4750 3350 3450 4450 3000 6000 4100 4950 25800 25650 19300 6350 5400 5400 19050 50 4750 3500 1850 2850 5100 3400 3550 300 0 300 0 0 0 1 0 0 3100 8100 0 7800 4250 250 2900 1500 0 3500 2300 6100 3300 7000 12100 8150 3500 4250 3900 4500 500 1100 2550 7900 11650 2400 0 1850 600 0 600 0 1250 7100 2650 2050 4250 1850 3950 0 8400 0 3750 1850 6050 3650 1850 duration 145 236 125 234 156 140 440 103 282 97 48 130 137 110 40 311 116 400 299 103 143 292 272 456 90 162 129 80 147 69 114 64 56 244 216 185 151 100 49 200 37 184 140 85 87 113 105 113 140 23 82 29 54 3 1 2 1 90 140 1 136 129 147 165 95 71 82 56 117 108 53 249 65 30 56 109 197 61 55 170 363 485 90 31 173 37 baddias 30 6 0 6 6 4 57 7 17 9 0 17 14 16 2 19 10 43 21 18 19 18 31 77 18 10 6 8 10 5 10 8 9 52 54 41 18 11 12 31 0 12 8 3 10 13 6 8 0 0 0 0 0 0 1 0 0 5 18 0 17 10 0 8 6 0 6 5 13 7 10 20 12 5 7 8 11 2 4 7 23 25 4 0 3 1 253 0 78 20 44 218 183 99 265 46 253 74 404 114 92 35 128 95 86 3 0 2 20 6 5 10 6 15 0 18 0 8 3 14 7 6 GLOM:Information Agglomerates hits 290 47 0 38 36 28 340 72 166 51 120 231 262 372 12 179 191 613 182 221 403 167 303 862 399 59 38 63 59 43 105 46 262 740 710 580 133 125 103 317 67 70 46 43 96 91 43 88 87 18 101 41 4 0 1 0 0 40 154 0 253 73 13 114 98 2 43 35 186 43 194 278 193 75 101 53 60 37 53 55 164 322 24 0 19 8 0 61 0 13 148 75 57 58 90 110 0 138 0 48 24 175 64 65 shots 914 287 1 480 618 709 6427 242 1141 456 371 1015 924 1069 27 565 1004 3436 754 1066 1269 1218 1431 3632 1060 243 158 348 703 214 359 205 725 3225 2620 2846 409 255 590 1254 82 219 152 118 256 235 88 170 161 22 128 46 23 0 1 0 0 104 316 0 397 389 32 247 254 3 160 97 346 121 219 470 285 125 119 173 268 90 113 189 975 739 308 1 70 27 0 116 3 45 524 192 184 153 114 216 0 611 7 199 55 355 374 177 ip address of player 7 tschichled.nedia.mit.edu/18.85.21. 1 150.113.82.96/150.113.82.96 7 64 5.1 .20 unrtinique.ai.fh-nuernberg.de/141. 206.65.39.26/206.65.39.26 206.65.39.26/206.65.39.26 206.65.39.26/206.65.39.26 206.65.39.26/206.65.39.26 206.65.39.26/206.65.39.26 206.65.39.26/206.65.39.26 206.65.39.26/206.65.39.26 206.65.39.26/206.65.39.26 206.65.39.26/206.65.39.26 206.65.39.26/206.65.39.26 206.65.39.26/206.65.39.26 7 2 frutiger.nedia.mit.edu/18.85.21. 193.189.235.63/193.189.235.63 206.65.39.26/206.65.39.26 206.65.39.26/206.65.39.26 155.33.46.180/155.33.46.180 206.65.39.26/206.65.39.26 206.65.39.26/206.65.39.26 155.33.46.180/155.33.46.180 155.33.46.180/155.33.46.180 dynic-10.media.mit.e4u/18.85.12.138 dynami-c--10.media.mnit.edu/18.85.12.138 147.4.20.87/147.4.20.87 client.cabrillo.cc.ca.us/207.62.186.254 6 6 sp8.mth.unn.edu/160.94. .13 sp8.nmth.unn.edu/160.94.6.136 sp8.mth.tmn.edu/160.94.6.136 sp8.mth.urn.edu/160.94.6.136 sp8.mth.un.edu/160.94.6.136 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ztm-iodn02-03.dial.xs4all.nl/1 208.25.184.62/208.25.184.62 id# 2216 2217 2218 2219 2220 2221 2222 2223 2224 2225 2226 2227 2228 2229 2230 2231 2232 2233 2234 2235 2236 2237 2238 2239 2240 2241 2242 2243 2244 2245 2246 2247 2248 2249 2250 2251 2252 2253 2254 2255 2256 2257 2258 2259 2260 2261 2262 2263 2264 2265 2266 2267 2268 2269 2270 2271 2272 2273 2274 2275 2276 2277 2278 2279 2280 2281 2282 2283 2284 2285 2286 2287 2288 2289 2290 2291 2292 2293 2294 2295 2296 2297 2298 2299 2300 2301 2302 2303 2304 2305 2306 2307 2308 2309 2310 2311 2312 2313 2314 2315 2318 2319 2320 2321 1C19F3D8E.dip.t-online.de/193.159.61.142 199.6.61.73/199.6.61.73 199.6.61.73/199.6.61.73 plne ec.toronto.edu/128.100.2.146 195.60.92.156/195.60.92.156 7 cx36536-a.vistal.edca.hcue.am24.0.1 8.52 cx36536-a.vista1.sdca.hce.can/24.0.178.52 vanc01O1-25.bctel.ca/206.108.197.25 cx36536-a.vistal.sdc.hce.can/24.0.178.52 va±nc01O1-25.bctel.ca/206.108.197.25 cx36536-a.vistal.sdca.bsecncc/24.0.178.52 cx36536-a.vista.sdca.he.cacn/24.0.178.52 cx36536-a.vistal.sdca.hcne.can/24.0.178.52 phxOltap160.sgum.mci.ccm/205.218.173.160 ridkenia.xnet.caV204.248.48.27 .in.da.uu.net/153.37.208.247 1Cust247.tnt.valparais 7 1Cust247.tnt1.valparais.in.da.uu.net/153.37.208.24 171-213-114.ipt.aol.can152.171.213.114 171-213-114.ipt.aol.ccv152.171.213.114 spc-isp-tor-uas-18-14.sprint.ca/209.5.19.115 men-54.aul.b.uunet.de/149.229.255.54 49 2 9 .1 dul29-249.ppp.algonet.se/195.100.2 qtae0320.singnet.can.sg/165.21.56.150 qtas0320.singnet.ccmn.sg/165.21.56.150 fr-hall-student-54.lut.ac.uk/131.231.242.54 fwasc6-19.flash.net/209.30.15.19 su1l-8.ida.liu.se/130.236.186.127 nrex8.joplin88.getonthe.net/208.142.6.88 7 6 .3 fw.itasnet/142.176.1 7 207-172-131-71.s8.as14.col.erols.canV207.172.131. 71 1 207-172-131-71.s8.as14.col.erls.cacn/207.172.131. WS-69 SO-04.dyess.af.mil/131.59.193.84 iM-1SFO--04.dyess.af.mil/131.59.193.84 0 .1 .131.1 207-172-131-71.s8.as14.col.erols.can/ 2 7 72 7 e.tccw.wku.edu/161.6.9.13 cpc04-a 7 3 7 2.1 1. 1 207-172-131-71.s8.asl4.col.erols.can/207.1 hp-99.cae.wisc.edu/144.92.241.119 194.68.71.65/194.68.71.65 firewall.krak.dk/193.89.85.2 beluga.cs.mlumbia.edu/128.59.22.148 beluga.cs.columbia.edu/128.59.22.148 6 pax--166.cis.ru/194.58.133.16 117 date time score duration baddies hits shots ip address of 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980427 980428 980428 980428 980428 980428 980428 980428 980428 980428 980428 980428 980428 980428 980428 980428 980428 980428 980428 980428 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980429 980430 980430 980430 7:13:19 AM 7:13:47AM 7:14:09AM AM 10:24:43 11:03:23 AM AM 11:27:51 11:29:55AM 11:44:59AM 1:41:222M 3:16:4489 3:19:31R4 5:07:53H4 6:56:282M 6:58:38PM 6:59:14PM 6:59:45PM 7:10:372M 7:11:06PM 7:11:3324 7:12:17 7:12:582M 7:13:302M 7:15:30PM 7:16:11 7:16±54 7:17:34 7:29:1624 8:03:302M 8:49:522M 8:53:122M 8:57:222M 11:21:14AM 11:28:17 AM 11:57:59 AM 12:56:00 2:08:0524 2:22:41 2:23:34 5:47:33 5:56:00 6:24:12 6:48:3324 8:22:41 8:38:0524 8:40:4224 8:41:412M 8:42:082M 9:53:082M 10:18:1024 11:37:0824 1:35:33AM 2:43:36AM 4:31:03AM 5:19:31AM 6:44:08AM 6:47:04AM 8:16:23AM 9:58:20AM 10:06:00AM 11:07:31AM 11:08:48AM 11:32:06AM 11:33:22AM 12:39:492M 12:41:142M 2:10:522M 2:13:422M 2:15:0224 2:17:07 2:21:382M 2:24:252M 2:26:0224 3:13:442M 3:20:552M 3:53±06PM 3:55:162M 4:24:00 4:27:372M 4:29:08PM 4:31:21FM 4:34:472M 4:39:372M 4:41:182M 4:42:5424 4:45:002M 4:47:492M 4:48:062M 4:52:2124 4:53:4824 5:27:1524 5:29:462M 5:33:392M 5:48:352M 7:08:2824 7:47:09PM 7:48:18 7:51:52 8:50:14 2M 10:37:09 2M 10:39:06 2M 11:36:48 1:38:08AM 1:38:52 AM 1:39:24AM 8800 1250 1550 1800 3350 0 0 0 2250 9400 18500 0 3700 0 0 1100 0 0 1300 250 750 600 1700 600 600 50 1750 5050 2550 5350 7050 200 4050 3400 3200 600 1550 2700 1800 2400 2300 3900 650 3300 10100 0 4750 0 5850 1250 7750 0 5250 0 3900 10250 2650 5200 4300 3250 2400 2200 350 1400 2300 0 4550 2700 2900 2900 5250 3750 3000 44950 20000 1250 3550 4800 3400 3800 4000 6950 4250 250 7900 5150 0 8400 4100 10450 7000 6800 3450 0 0 750 3750 7700 1800 2050 2300 5200 50 50 154 90 62 153 138 149 101 154 109 168 155 96 87 21 21 15 11 13 11 21 27 16 80 26 27 26 137 262 161 169 65 322 128 303 82 133 61 37 67 83 77 131 85 231 778 4 168 48 177 109 244 50 269 131 79 161 75 129 153 58 60 84 65 64 28 69 153 56 92 102 151 80 51 1898 996 90 140 181 92 119 187 191 84 62 206 151 4 170 60 223 134 195 171 53 77 52 198 240 74 100 98 143 24 17 17 4 6 3 5 0 0 0 9 19 31 0 9 0 0 1 0 0 1 0 1 1 4 1 1 0 3 11 6 8 10 0 9 9 7 1 4 4 3 5 5 9 2 6 25 0 11 0 17 5 17 0 21 0 10 21 5 13 11 6 5 5 0 2 3 0 9 5 6 6 12 9 5 106 46 4 7 10 8 15 15 27 8 0 17 12 0 18 8 22 17 17 8 0 0 2 9 15 3 3 7 11 0 0 143 50 49 25 50 3 0 5 81 430 492 0 70 7 27 34 18 21 38 5 9 6 39 9 14 13 41 75 102 173 179 11 54 101 40 52 61 31 55 73 60 88 15 36 236 0 88 0 144 69 206 3 173 0 100 229 39 108 103 43 34 43 14 23 109 0 58 53 34 38 78 51 30 1288 614 71 48 119 47 130 114 173 67 5 167 68 0 155 67 287 125 124 57 3 0 53 112 190 18 23 57 179 41 30 317 106 143 101 458 26 0 23 234 924 867 0 253 19 27 35 18 22 38 30 37 8 112 9 21 51 106 242 251 400 268 24 181 433 115 79 79 82 178 178 90 307 50 390 720 0 232 15 425 149 588 11 920 43 165 424 135 323 288 101 148 110 53 59 131 2 186 128 98 127 286 175 53 4846 2104 223 139 423 132 246 235 328 212 9 539 530 0 477 179 664 506 544 231 10 6 137 368 463 30 95 157 360 82 48 pox-166.cis.ru/194.58.133.166 anduin.et.tudelft.nl/130.161.39.34 anduin.et.tudelft.nl/130.161.39.34 208.223.32.151/208.223.32.151 194.47.138.86/194.47.138.86 cynthiav.hu.bonus.cmc/195.228.57.122 cynthiav.hu.bonus.ccm/195.228.57.122 198.36.224.177/198.36.224.177 p17.tc9.metro.MA.tiac.cm/209.61.77.18 dynamic-18.media.mit.edu/18.85.12.146 8 8 dynamic-18.nedia.mit.edu/1 . 5.12.146 198.243.81.15/198.243.81.15 nesis.hlib.washington.edu/128.95.122.69 tschicnld.media.dit.edu/18.85.21.71 tschichold.nlia.nit.edu/18.85.21.71 tschichold.media.nit.edu/18.85.21.71 tochichold.media.mit.edlu/18.85.21.71 tschicr1d.nelia.nit.edu/18.85.21.71 it.edu/18.85.21.71 tochicrld.nedia. tschichold.nlia.mit.edu/18.85.21.71 tschichold.media.mit.edu/18.85.21.71 tschichold.oedia.mit.edu/18.85.21.71 tschichold.media.nit.edu/18.85.21.71 tschichold.nedia.mit.edu/18.85.21.71 tschiclld.media.mit.edu/18.85.21.71 tschichold.nedia.mit.edu/18.85.21.71 205.149.126.101/205.149.126.101 nibusO08.und.edu/129.2.4.22 cust174.webbernet.net/208.205.95.174 7 cust174.wehoernet.net/208.205.95.1 74 4 cust174.welbernet.net/208.205.95.1 s1-3.vipxlnet.cca/206.47.93.13 206.215.193.2/206.215.193.2 aladin.eur.nl/130.115.1.102 194.215.211.28/194.215.211.28 198.36.224.178/198.36.224.178 207.73.129.121/207.73.129.121 207.73.129.121/207.73.129.121 207.15.215.156/207.15.215.156 207.15.215.156/207.15.215.156 firew11.sdnet.net/137.118.11.193 199.201.192.150/199.201.192.150 62.76.6.15/62.76.6.15 0 0 7 .62.15 200-62-175.ipt.aol.cu/152.2 128.100.46.54/128.100.46.54 128.100.46.54/128.100.46.54 202-131-203.ipt.aol.cc/152.202.131.203 207.194.176.164/207.194.176.164 ppp077.connect.ab.ca/207.34.79.77 7 liv16-43.idirect.ccn/207.136.108.10 es208-15.studet.washington.edu/140.142.171.118 lithium.helios.nd.edu/129.74.220.3 7 dialup97-2-13.swipnet.se/130.244.97.7 cynthiav.hu.bnus.cam/195.228.57.122 d84.ryd.studet.liu.se/130.236.235.84 d84.ryd.student.liu.se/130.236.235.84 7 10-26-17.amapolis.nsec.ns.a/142.227.26.1 38.230.14.107/38.230.14.107 38.230.14.95/38.230.14.95 ws107.ini.cz/195.212.195.107 wsl07.ini.cz/195.212.195.107 ws103.ini.cz/195.212.195.103 porsche.pd.lonn.sco.camV150.126.9.73 h0010107.smdth.ilstu.edu/138.87.201.7 h0010107.smith.ilstu.ed.u/138.87.201.7 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 wireless-83.media.m±it.edu/18.85.18.83 38.230.14.95/38.230.14.95 38.230.14.95/38.230.14.95 205.218.188.79/205.218.188.79 168.28.83.151/168.28.83.151 168.28.83.151/168.28.83.151 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 6 66 .21 c266216.exten.laowrmeeille.org/38.162. 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 208.148.188.31/208.148.188.31 206.6.58.134/206.6.58.134 thelonious.ne.o.ac.uk/163.1.145.129 68 du68-1.P.algonet.se/195.100.1. 68 du68-1.pp.algonet.se/195.100.1. du68-1.ppp.algnet.se/195.100.1.68 0 7 .20 208-211-100-207.dynamic.nol.net/208.211.10 trt-on20-34.netcn.ca/207.181.87.162 trt-n20-34.netccm.ca/207.181.87.162 ol-31.kclab.nuhave.cc.az.us/206.207.55.210 dul32-4.op.algonet.se/195.100.4.132 du132-4.ppp.algonet.se/195.100.4.132 dul32-4.ppp.algonet.se/195.100.4.132 M M M M M M M M M M M M M M M M GLOM:Information Agglomerates player id# 2322 2323 2324 2326 2327 2328 2329 2330 2331 2332 2333 2334 2335 2336 2337 2338 2339 2340 2341 2342 2343 2344 2345 2346 2347 2348 2349 2350 2351 2352 2353 2354 2355 2356 2357 2358 2359 2360 2361 2362 2363 2364 2365 2366 2367 2368 2369 2370 2371 2372 2373 2374 2375 2376 2377 2378 2379 2380 2381 2382 2383 2384 2385 2386 2387 2388 2389 2390 2391 2392 2393 2394 2395 2396 2397 2398 2399 2400 2401 2402 2403 2404 2405 2406 2407 2408 2409 2410 2411 2412 2413 2414 2415 2416 2417 2418 2419 2420 2421 2422 2423 2424 2425 2426 118 date time 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 1:40:19 AM 1:45:53AM 2:51:35AM 4:18:15AM 4:38:23AM 4:42:27AM 5:15:54AM 6:32:00AM 6:36:39AM 6:54:31AM 7:07:18AM 7:25:14AM 8:02:23AM 8:15:54AM 8:16:26AM 8:19:08AM 8:19:46AM 8:25:08AM 9:05:58AM 9:13:42AM 9:14:55AM 9:15:05AM 9:15:31AM 9:16:20AM 9:17:24AM 9:19:14AM 9:26:36AM 9:34:26AM 9:40:05AM 9:45:50AM 10:00:07 AM 10:45:44 AM 10:46:19 AM 11:15:47AM 11:22:27AM 11:28:25 AM 11:29:10AM 11:32:16 AM 11:32:35AM 11:34:53AM AM 11:34:55 11:37:51 AM 11:39:15 AM 11:41:26 AM 11:41:36 AM 11:43:18 AM 11:44:36 AM 11:45:20 AM 11:45:40 AM 11:45:54 AM AM 11:48:54 11:50:24 AM 11:55:11 AM 11:55:13 AM 12:08:17 RM 12:14:2294 12:31:23 R4 12:34:26 rM 1:20:26SM 1:23:30PM 1:31:4624 1:33:32SM 1:46:00EM 1:54:28PM 2:02:27PM 2:07:36SM 2:31:01SM 2:35:52FM 2:37:58IM 2:40:07SM 2:40:11PM 2:42:12PM 2:43:27SM 2:44:01SM 2:56:10PM 2:59:32SM 3:14:04SM 3:36:14SM 3:38:39SM 3:39:54SM 4:01:25FM 4:14:40 4:15:37SM 4:16:36SM 4:18:31 4 4:21:49 4:22:40SM 4:23:52EM 4:24:15SM 4:28:48FM 4:32±50SM 4:36:56SM 4:43:35SM 4:49:28 4:49:31SM 4:53:06 5:25:10SM 5:27:06 5:28:06SM 5:31:05EM 5:33:09SM 5:33:43SM 5:36±18SM 5:37:08SM M M M M M score 3350 4900 3200 2600 6550 7450 0 5000 8600 4800 4600 4600 0 2200 5500 4700 3100 3350 250 950 0 5850 2100 1700 600 3800 8300 9750 7900 7650 3750 1950 0 4500 6150 500 2400 4300 4000 3500 1550 3900 1900 3750 1950 1400 550 1400 100 3750 1050 2750 950 0 0 11000 6850 4050 4100 1200 7100 24950 750 1300 4950 1450 3250 3550 2450 1950 4550 4450 4800 5800 350 4500 18750 1900 1350 2200 5250 750 1650 1750 0 11550 2400 4850 3700 1250 4800 7350 3900 1200 7800 1850 3500 3000 750 3700 3750 1650 200 2900 duration 37 109 542 218 216 220 356 260 262 176 151 107 1 142 274 308 185 305 181 92 49 298 292 59 96 158 532 442 322 327 168 49 92 390 382 144 182 399 188 122 142 157 245 289 142 81 90 28 134 376 158 253 242 85 109 339 269 166 545 36 191 180 171 124 503 161 69 80 110 93 119 105 173 94 172 197 898 104 130 61 257 75 41 44 79 295 159 107 60 107 155 231 175 104 300 352 141 100 42 163 112 92 195 133 GLOM:Information Agglomerates baddies 4 11 7 6 12 15 0 12 32 15 11 11 0 4 15 10 10 6 1 1 0 17 7 6 1 8 15 22 15 15 8 6 0 10 19 2 5 11 8 7 5 10 3 14 5 2 1 4 0 9 1 9 3 0 0 42 12 9 9 1 13 41 1 2 10 3 6 6 4 3 7 10 12 14 1 9 49 6 5 6 14 3 6 7 0 42 4 13 6 5 10 15 10 3 17 5 7 5 3 7 10 6 0 5 hits 79 81 57 77 101 139 0 91 234 112 62 113 0 26 82 62 105 41 38 13 12 163 82 100 6 46 226 251 169 139 45 74 11 93 155 19 32 101 102 75 89 60 21 135 50 18 28 63 18 53 83 88 67 0 2 276 143 85 56 90 157 402 49 19 105 91 41 49 35 21 86 125 83 137 7 118 551 58 95 83 121 34 50 52 0 268 27 132 38 45 96 138 60 31 159 99 45 33 36 44 117 84 4 51 shots 105 548 262 223 289 432 18 444 588 561 296 336 0 302 448 448 531 878 130 75 14 1317 591 162 57 519 1014 658 579 489 298 105 48 440 675 49 345 512 344 198 200 237 247 715 216 78 276 117 108 333 231 220 238 2 5 687 446 298 344 92 246 1606 62 91 433 195 112 144 69 106 148 259 471 342 10 328 1895 315 554 192 348 124 190 207 7 1563 139 379 110 140 308 456 262 95 634 616 96 81 61 157 226 186 27 271 ip address of player du32-4.ppp.algonet.se/195.100.4.132 h0010107.siLth.i1stu. edu/138.87.201.7 F502-37.nrin r.or.jp/202.239.141.37 dnitche.doa.state.1a.us/192.206.109.131 ad114-169.nngix.cm.sg/165.21.114.169 ad114-169.negix.ccrm.sg/165.21.114.169 h38.s25.ts3O.hinet.net/163.30.25.38 SY-A08-pool-189.tan.net.au/139.134.92.189 SY-A08-pool-189.tun.net.au/139.134.92.189 21.new-york-10.ny.dial-access.att.net/12.68.9.21 210.112.207.253/210.112.207.253 193.45.130.36/193.45.130.36 t1o63p74.telia.crn/195.198.44.74 150.104.89.177/150.104.89.177 id# 2427 2428 2429 2430 2431 2432 2433 2434 2435 2436 2437 2438 2439 2440 2441 168.221.114.152/168.221.114.152 2442 2443 o4-33.dialup.seed.net.tw/139.175.4.33 o4-33.dialup.seed.net.tw/139.175.4.33 2444 pp108.brandywine.net/207.106.54.40 2445 2446 norph.grd.de/192.76.245.44 2447 orph.grrd.de/192.76.245.44 stk-pw223.gotnet.net/207.104.58.223 2448 pppl08.brandywine.net/207.106.54.40 2449 stk-pw223.gotnet.net/207.104.58.223 2450 2451 ppp108.brandywine.net/207.106.54.40 stk-pw223.gotnet.net/207.104.58.223 2452 psplO8.brandywine.net/207.106.54.40 2453 ppp108.brandywine.net/207.106.54.40 2454 2455 2456 apl108.brandywine.net/207.106.54.40 2457 dialup187-2-12.swixpet.se/130.244.187.76 2458 ws103.ini.cz/195.212.195.103 2459 208.158.171.12/208.158.171.12 2460 168.221.114.131/168.221.114.131 2461 168.221.114.131/168.221.114.131 2462 h187n105.cpsboe.kl2.oh.us/198.203.105.187 2463 168.221.114.131/168.221.114.131 2464 desm-16-55.dialup.netins.net/167.142.17.184 2465 168.221.114.131/168.221.114.131 2466 168.221.114.131/168.221.114.131 2467 deno-16-55.dialup.netins.net/167.142.17.184 2468 168.221.114.131/168.221.114.131 7 7 2469 .142.1.184 den-16-55.dialup.netins.net/16 2470 168.221.114.132/168.221.114.132 2471 168.221.114.125/168.221.114.125 2472 168.221.114.125/168.221.114.125 2473 jam.calibresys.can/208.206.170.15 2474 jam.calibresys.can/208.206.170.15 2475 168.221.114.126/168.221.114.126 2476 desm-16-55.dialup.netins.net/167.142.17.184 2477 desm-16-55.dialup.netins.net/167.142.17.184 2478 168.221.114.126/168.221.114.126 2479 168.221.114.126/168.221.114.126 2480 170.143.130.162/170.143.130.162 2481 204.133.199.140/204.133.199.140 2482 209.2.245.26/209.2.245.26 2483 pp108.brandywine.net/207.106.54.40 2484 2485 202.175.3.111/202.175.3.111 2486 168.99.152.81/168.99.152.81 2487 su±n21.enin.brown.edu/128.148.54.31 2488 kirby.media.mit.edu/18.85.21.34 2489 st227.d50.tazewell.k12.IL.US/207.63.38.227 2490 st227.d50.tazeell.kl2.IL.US/207.63.38.227 2491 st227.d50.tazewell.k12.IL.US/207.63.38.227 2492 st227.d50.tazewe11.kl2.il.us/207.63.38.227 2493 206.135.224.253/206.135.224.253 2494 208.224.45.32/208.224.45.32 2495 208.224.45.32/208.224.45.32 2496 208.224.45.42/208.224.45.42 2497 208.224.45.32/208.224.45.32 2498 208.224.45.32/208.224.45.32 2499 208.224.45.42/208.224.45.42 2500 208.224.45.32/208.224.45.32 2501 dynO11psp47.pacific.net.g/210.24.101.47 7 2502 dyn101ppp47.pacific.net.sg/210.24.101.4 7 2503 pp>-6-19.nn.visi.net/206.246.199.14 2504 wav4-cs-2.dial.bright.net/205.212.155.54 2505 2506 vav4-cs-2.dial.bright.net/205.212.155.54 2507 209.66.196.173/209.66.196.173 7 7 2508 .228.6.52 ts71ip52.cadvision.ccm/20 2509 ts71ip52.cadvisio.ccm/207.228.76.52 2510 ts7lip52.cadvision.a-M/207.228.76.52 dyn1-tntl-28.cleveland.oh.aneritech.net/199.179.175.28 2511 2512 ts71ip52.cadvision.ccf/207.228.76.52 2513 pub-10-a-7.dialup.unn.eu/160.94.25.7 2514 ts7lip52.cadvision.coc/207.228.76.52 2515 knx-tn7-14.ix.netcan.ccm/205.184.139.174 2516 168.28.82.83/168.28.82.83 2517 user-37kb6tk.dialup.mindspring.ccu/207.69.155.180 2518 user-37kb6tk.dialup.mindspring.Amn/207.69.155.180 2519 van-as-06b02.direct.ca/204.174.249.66 2520 slipl66-72-247-107.no.us.ih±n.net/166.72.247.107 2521 van-as-06b02.direct.ca/204.174.249.66 2522 dial-as2-34.poci.net/206.160.255.36 2523 rewl-01-40.dialup.netins.net/209.152.68.105 2524 rewl-01-40.dialup.netins.net/209.152.68.105 2525 cewl-01-40.dialup.netins.net/209.152.68.105 2526 rcwl-01-40.dialup.netins.net/209.152.68.105 2527 dialin-12.poughkeepsie.bestweb.net/209.94.109.46 2528 AS52-15-240.cas-kit.golden.net/209.183.130.240 2529 slip129-37-206-39. in.us.ihnm.net/129.37.206.39 2530 AS52-15-240.cas-kit.goldms.net/209.183.130.240 s4-33.dialup.seed.net.tw/139.175.4.33 pplO8.brandywine.net/207.106.54.40 mp108.brandywine.net/207.106.54.40 Amv4-cs-2.dial.bright.net/205.212.155.54 119 dats 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 980430 985430 985430 980430 980430 980430 980430 980430 980501 980501 980501 980501 980501 980501 980501 980501 time 5:37:46 24 5:42:41 FM 5:44:24 2M 5:48:24 R4 6:01:25 2M 6:02:482M 6:03:54R4 6:05:492M 6:07:03P4 6:07:422M 6:08:202M 6:11:20 2M 6:11:58 2M 6:12:03 24 6:12:122M 6:14:19PM 6:16:5224 6:19:372M 6:22:03R4 6:27:412M 6:28:482M 6:29:462M 6:30:2924 6:33:322M 6:33:372M 6:35:4124 6:39:542M 6:41:5624 6:43:4824 6:48:5824 6:49:182M 6:52:1424 6:53:5924 6:55:0624 6:57:4224 6:59:5824 7:10:112M 7:12:4224 7:13:022M 7:14:4224 7:26:1524 7:29:52EM 7:37:0824 7:42:012M 7:43:252M 7:47:002M 7:48:5024 7:49:532M 7:51:0924 7:52:5824 7:57:0924 7:57:332M 8:14:06 24 8:17:53 24 8:18:0324 8:19:102M 8:19:5124 8:24:472M 8:24:542M 8:26:00 2M 8:26:57 24 8:30:352M 8:31:052M 8:31:142M 8:32:27 2M 8:36:06 2M 8:54:07 2M 9:09:33 9:13:08 9:23:12P 9:24:3524 9:25:10 9:25:58 24 9:27:52 2M 9:29:47 9:32:12 9:33:11 24 9:40:1624 9:41:3824 9:57:5524 9:59:142M 10:00:292M 10:20:10 10:21:082M 10:28:08 10:43:392M 10:50:14PM 10:55:1524 10:55:3024 11:03:4124 11:16:40 11:31:15PM 11:41:17 11:45:48PM 11:56:332M 11:59:21 12:57:41AM 1:16:47A4 2:29:23AM 2:51:46AM 5:14:42AM 7:39:34AM 7:44:42AM 7:55:11AM M M M M M M M M M M score 3200 5150 7850 2150 1750 5500 8850 9350 1250 4600 1200 2400 5400 3250 6150 4850 8200 5200 7950 3550 3850 2950 3000 4800 3100 5000 7650 11200 8150 3850 2450 2650 1900 10150 4150 3600 2700 3550 1750 3050 4150 3650 1300 3150 2950 3800 3450 6350 1650 5350 10850 10750 4500 50 0 1000 10550 300 0 10250 1350 3800 100 4400 400 2650 7800 3750 8500 0 3400 3800 1800 4600 4500 3750 9100 5000 11550 450 1700 2650 23150 1150 4300 0 8450 5100 0 9350 0 0 2300 250 9100 4900 4300 5700 1200 5100 5150 4550 2950 44750 duration baddies hits shots ip address of player 164 375 378 128 151 481 412 534 62 159 156 208 534 243 248 160 270 239 288 138 116 103 79 168 84 113 345 254 83 186 121 248 88 307 206 120 180 134 104 105 221 204 195 126 143 81 187 226 59 233 344 331 142 71 4 49 437 131 3 419 100 172 41 243 162 248 276 161 191 53 106 100 67 146 101 220 189 127 547 162 71 59 179 114 181 1 383 284 4 474 98 40 116 88 228 139 107 170 23 383 131 222 270 917 9 12 17 8 5 11 20 22 3 9 4 4 13 5 13 11 13 12 15 7 7 6 5 8 8 8 15 23 12 7 9 5 7 25 7 7 4 7 5 5 11 7 2 7 5 7 7 14 6 12 22 22 9 0 0 4 25 1 0 34 2 7 0 9 0 7 16 8 16 0 8 6 7 11 9 8 19 13 38 1 6 6 36 1 9 0 25 9 0 22 0 0 9 0 19 9 9 12 2 16 10 18 6 179 52 80 157 81 46 104 165 213 21 80 59 30 75 61 102 66 186 87 178 44 52 35 42 66 143 79 151 342 231 48 102 29 74 269 80 44 39 44 80 35 97 43 16 39 42 64 46 114 67 91 284 276 56 1 0 58 287 6 0 238 15 50 2 77 8 47 237 85 192 0 54 41 91 89 73 45 171 105 252 9 95 64 346 58 108 0 179 89 0 162 15 0 109 7 234 194 110 115 12 121 101 125 38 932 148 354 360 392 211 523 604 869 46 243 141 96 421 266 524 136 377 219 321 170 159 160 109 204 196 187 386 584 310 142 302 212 127 606 307 126 121 147 146 133 504 609 34 130 209 117 239 332 138 290 1220 656 191 14 1 80 854 25 0 1843 32 199 2 263 14 195 526 173 292 0 237 121 289 277 308 306 512 216 1225 45 224 172 1535 88 419 0 885 655 0 1012 98 1 307 39 544 340 195 246 37 1176 258 1198 126 7070 167-143-192.ipt.aol.omn/152.167.143.192 us.ih±n.net/129.37.206.39 slipl29-37-206-39.in. 67 1 -143-192.ipt.aol.o n/152.167.143.192 cybers20d05.cg.wv.shaw.ca/24.64.20.75 tcl-135.constant.crnV208.6.184.135 slip129-37-206-39.in.us.ib.net/129.37.206.39 206.187.101.120/206.187.101.120 aus-tx23-21.ix.netoc.caV207.221.68.245 131.187.143.2/131.187.143.2 gpl8.brandywine.net/207.106.54.40 slip129-37-112-136.pa.us.ihn.net/129.37.112.136 lax-ca38-54.ix.netcan.oon/205.184.226.118 slip129-37-206-39.in.us.im.net/129.37.206.39 ppp108.brandywine.net/207.106.54.40 131.187.143.2/131.187.143.2 lax-ca38-54.ix.netcan.can/205.184.226.118 op108.brandywine.net/207.106.54.40 deerfieldnet71.voyager.net/198.109.118.71 GLOM:Information Agglomerates id# 2531 2532 2533 2534 2535 2536 2537 2538 2539 2540 2541 2542 2543 2544 2545 2546 2547 2548 2549 2550 CP22.CS.CLL.E /128.84.248.153 2551 ppp108.brandywine.net/207.106.54.40 2552 4CP22.CS.CENELL.EW/128.84.248.153 2553 ppp108.brandywine.net/207.106.54.40 2554 ppp108.brandywine.net/207.106.54.40 2555 CP22.C.CGNELL.EINJ/128.84.248.153 2556 p108.brandywine.net/207.106.54.40 69.new-orleas-01.1a.dial-access.att.net/12.65.208.69 2557 2558 2559 CP22.CS.CENM.L.EIJ/128.84.248.153 ppp-207-214-212-42.sntc0l.pacbell.net/207.214.212.42 2560 2561 2071599883.bellatlantic.net/207.159.98.83 2562 206.187.133.133/206.187.133.133 2563 206.187.133.133/206.187.133.133 2564 2071599883.bellatlantic.net/207.159.98.83 2565 206.187.133.133/206.187.133.133 2566 206.187.133.133/206.187.133.133 2567 up-248-015.ppp-net.buffalo.edu/126.205.248.15 2568 utssp-248-015.ppp-net.uffalo.edu/128.205.248.15 2569 200-33-93.ipt.aol.ccrV152.200.33.93 2570 utgp-248-015.ppp-net.buffalo.edu/128.205.248.15 2571 crasl0p47.navix.net/205.242.144.176 2572 crasl0p47.navix.net/205.242.144.176 2573 192.138.182.94/192.138.182.94 2574 usr-twin-55.rnci.net/208.14.168.55 2575 24.138.26.141/24.138.26.141 2576 pd02-pn2-02.teleport. m/204.202.160.34 2577 d363n6.hsonline.net/208.10.214.134 2578 206.78.76.205/206.78.76.205 2579 206.78.76.205/206.78.76.205 2580 d363n6.hsonline.net/208.10.214.134 2581 206.78.76.205/206.78.76.205 2582 pdx02-pn-2-02.teleport.ccn/204.202.160.34 2583 usr40-dialup11.mix2.Atlanta.nri.net/166.55.60.203 2584 209.24.202.130/209.24.202.130 2585 209.24.202.130/209.24.202.130 2586 209.24.202.130/209.24.202.130 2587 204.183.206.97/204.183.206.97 2588 pr6-209.tstonranp.ccm/206.55.137.209 2589 pr6-209.tstnranp. ccu/206.55.137.209 2590 pn15-12.nagicnlt.net/206.104.204.205 2591 pr6-209.tstanranp.ccrn/206.55.137.209 2592 du5-ts2.lascruces.ccv/205.166.1.141 2593 cyber98d198.ss.ave.shaw.ca/24.64.98.198 2594 pr6-209.tstonranp.cn/206.55.137.209 2595 client-120-34.be1llatlantic.net/151.198.120.34 2596 cybers98d198.s.wave.shaw. ca/24.64.98.198 2597 surf182.naplesfl.net/24.129.24.182 2598 pnd1dn18.eg1.net/208.159.114.51 2599 pndni18.egl.net/208.159.114.51 2600 236.chicago-34.il.dial-access.att.net/12.67.129.236 2601 cybers45d241.nt.wave.shlaw.c/24.64.45.241 2602 236.chicago-34.il.dia1-access.att.net/12.67.129.236 2603 cybers45d241.nt.wave.shaw.ca/24.64.45.241 2604 236.chicago-34.il.dial-access.att.net/12.67.129.236 2605 236.chicago-34.il.dial-access.att.net/12.67.129.236 2606 hdn94-145.hil.ccpn-userve.ccrn/209.154.56.1457 2 36 .19.2 2607 236.chicago-34.il.dial-access.att.net/12.6 2608 usrtc-tl-27.olypen.ccn/208.229.228.32 2609 hdn94-145.hil.ca±ruserve.ccrn/209.154.56.145 2610 dialup18.altonet.ca/206.66.163.118 8 6 6 2611 . 6.163.11 dialup18.altonet.ccan/20 2612 dialu1±8.altcnet.cx±V206.66.163.118 2613 edu/18.85.21.34 kirby. media.rdit. 2614 208.14.240.106/208.14.240.106 2615 'ITMPLE.MIrT.EI/18.237.0.33 ppp-207-215-86-116.scraO1.pacbell.net/207.215.86.116 2616 pp-207-215-86-116.sczmol1.pacbell.net/207.215.86.116 2617 pgp-207-215-86-116.scrmD±1.pacbell.net/207.215.86.116 2618 2619 7 6 6 2620 .215.8 .11 ppp-207-215-86-116.sczO1.pacbell.net/20 8 2621 .6.13.3 rus.nrutgers.edu/12 2622 spc-isp-van-so -34-17.sprint.ca/209.148.184.18 2623 1Cust90.tt1.elkhart.in.da.u.net/208.254.26.90 2624 209.75.203.40/209.75.203.40 2 9 76 2625 pn1-pp-90.ke-prinary.net/ 0 .1 .130.90 2626 pn1-pp-90.kc-prinnry.net/209.176.130.90 2627 whitelll.uwyo.edui/129.72.235.111 2628 B99.cocc. edtu/206.163.25.99 2629 hockinghills.org/206.222.12.58 2630 punch.ca. olunbia.edu/128.59.19.11 2631 sjoback.medkan.gu.se/130.241.76.95 2632 cc660582-a.vron1.nj.lnhe.ccrn/24.3.148.18 2633 nagenta.afip.org/192.239.86.126 2634 c660582-a.vronl.nj.hOxn.ccnV24.3.148.18 o108.brandywine.net/207.106.54.40 MP22.S.CENELL.EIIJ/128.84.248.153 mp-207-215-86-116.scznO1.pacbell.net/ 120 date time score duration baddies hits shots ip address of player id# 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 8:23:10 AM 8:43:56AM 8:49:07AM AM 10:06:03 10:13:49 AM 10:15:34 AM 10:20:54 AM 10:23:45 AM AM 10:25:02 10:34:19 AM 10:37:42 AM AM 10:38:03 10:40:48 AM AM 10:41:47 10:43:25 AM AM 10:45:37 10:48:34 AM 11:05:01 AM AM 11:10:59 11:13:22 AM 11:17:17 AM 11:19:47AM 11:27:10 AM AM 11:29:27 11:30:54AM 12:09:05 1:17:32FM 1:26:48PM 1:35:41PM 1:36:07RM 1:38:53FM 1:41:53FM 1:43:54R4 1:49:37RM 1:50:01RM 1:51:01RM 1:51:54RM 1:53:07RM 1:53:39RM 1:54:43RI 1:55:31RI 1:56:45R 1:57:19 1:57:20RI 1:58:24 1:58:58RI 2:01:08RM 2:04:04RM 2:04:05 2:04:38RM 2:06:10M 2:08:15 M 2:10:42 2:12:31 RI 2:16:10 2:18:32 2:19:51 M 2:27:14 2:29:19 M 2:31:44 M 2:32:56 2:34:20 2:35:32 RM 2:36:57RM 2:37:45 2:40:20 RI 2:50:01 RM 3:21:39 RM 3:23:08 3:24:39 M 3:27:18 M 3:32:54 RI 3:34:40 M 3:36:43 RM 3:38:45 3:40:24 3:43:09 RI 3:44:14 3:45:31 RM 3:47:01 RI 3:52:09 RI 3:53:52 RI 3:56:06 RI 3:59:43 RM 4:01:55 4:14:47 4:17:29 4:21:33 RI 4:21:45 R4 4:22:09 RI 4:23:16RI 4:23:23RI 4:27:48RM 4:29:31RM 4:30:29RM 4:36:06RI 4:39:21 4:48:09RM 5:04:14RM 5:07:11RM 5:09:42RM 5:16:35RI 5:23:24RI 5:24:53RI 3550 6450 8150 6900 250 8400 3050 4350 13900 10200 2200 6100 2700 4000 3650 2900 4750 9150 3550 5200 11400 2400 3650 3650 1850 6150 4250 4100 1600 7700 5400 4600 8550 3300 9150 9250 4650 3000 3500 5350 3800 2750 4100 1900 5850 4000 4150 1400 5000 9550 4250 3300 4150 3000 3650 3100 2450 4850 4800 7250 2700 2900 1300 3700 750 6600 0 1100 250 1750 4050 9450 3800 5900 8800 3350 50 2050 950 9850 11450 2800 12550 11900 5900 2400 3350 3200 2850 4350 8850 7700 5700 7500 3700 7900 4000 5400 4800 3450 6500 3650 3650 8500 155 276 293 237 103 259 134 157 525 499 162 208 168 92 142 114 156 101 68 129 218 110 104 175 71 278 216 130 251 160 137 133 252 215 653 386 119 109 82 238 93 105 205 243 154 118 142 97 161 423 111 105 124 94 204 127 64 427 86 129 53 69 48 61 32 140 115 95 63 60 129 320 180 205 229 122 50 222 60 393 244 283 529 325 332 279 143 22 242 21 283 58 346 358 145 320 177 200 336 94 147 366 219 252 7 21 27 12 0 13 5 9 22 17 6 14 4 6 7 5 11 18 7 11 26 4 7 14 6 15 8 8 2 13 9 10 14 6 27 15 10 5 7 11 6 11 11 6 16 9 11 2 14 31 11 9 9 6 9 8 4 11 10 15 5 6 3 6 3 11 0 3 1 4 9 21 9 16 24 6 0 8 2 23 23 5 28 22 18 4 7 5 6 7 21 16 13 24 7 16 9 11 9 8 16 13 9 23 41 173 190 181 6 182 32 168 362 279 86 119 30 83 71 34 91 314 41 97 353 29 46 119 34 168 63 55 20 139 77 67 196 97 154 391 89 30 43 94 67 111 82 51 87 68 117 19 144 205 114 82 121 77 100 66 25 111 116 146 36 121 88 68 47 119 1 50 34 64 106 228 80 141 160 37 36 84 13 195 278 32 385 374 118 42 51 63 44 82 209 309 97 186 44 149 58 77 59 101 117 118 74 298 100 2010 3593 536 14 480 97 242 1681 1238 200 501 171 191 195 161 301 1067 282 789 1372 57 181 435 126 477 150 181 70 277 344 233 497 845 1177 1015 487 187 325 348 367 259 280 115 734 272 631 73 928 1296 482 444 574 374 915 530 186 645 331 417 167 213 181 162 82 457 1 92 41 123 251 518 257 356 399 296 36 499 87 629 485 193 1056 1002 576 148 126 165 230 306 1186 629 313 1288 181 284 178 306 153 227 356 527 159 666 dialup240.brussels2.skynet.be/195.238.23.240 cheog.ica.kth.se/130.237.44.139 cheog.ics.kth.se/130.237.44.139 ppp102.brandywine.net/207.106.54.34 beelzebub-53.tcg-nex.mteract.ccn/207.229.150.53 2635 2636 2637 2638 2639 2640 2641 2642 2643 2644 2645 2646 2647 2648 2649 2650 2651 2652 2653 2654 2655 2656 2657 2658 2659 2660 2661 2662 2663 2664 2665 2666 2667 2668 2669 2670 2671 2672 2673 2674 2675 2676 2677 2678 2679 2680 2681 2682 2683 2684 2685 2686 2687 2688 2689 2690 2691 2692 2693 2694 2695 2696 2697 2698 2699 2700 2701 2702 2703 2704 2705 2706 2707 2708 2709 2710 2711 2712 2713 2714 2715 2716 2717 2718 2719 2720 2721 2722 2723 2724 2725 2726 2727 2728 2729 2730 2731 2732 2733 2734 2735 2736 2737 2738 IM M M M M IM M M M M M M M M IM IM M M IM GLOM:Information Agglomerates gPP102.brandywine.net/207.106.54.34 207.125.29.174/207.125.29.174 207.125.29.174/207.125.29.174 pgp102.brandywine.net/207.106.54.34 ppp102.brandywine.net/207.106.54.34 ws-2.1df.k12.wi.us/208.155.7.98 ppp102.brandywine.net/207.106.54.34 ws-2.ldf.kl2.wi.us/208.155.7.98 Epp102.brandywine.net/207.106.54.34 ws-2.ldf.k12.wi.us/208.155.7.98 ws-2.1df.k12.wi.us/208.155.7.98 ws-2.ldf.k12.wi.us/208.155.7.98 8 33 2 3 . .5 castle.bank.lv/159.14 castle.bank.lv/159.148.33.253 csotle.bank.lv/159.148.33.253 castle.bank.lv/159.148.33.253 206.30.7.191/206.30.7.191 194.133.55.71/194.133.55.71 206.30.7.149/206.30.7.149 206.30.7.149/206.30.7.149 dynamic22.pYn3.pleasanton.bst.mcu/204.156.131.150 207.125.29.180/207.125.29.180 ppp105.brandywine.net/207.106.54.37 208.137.84.94/208.137.84.94 pppl05.brandywine.net/207.106.54.37 ppp105.brandywine.net/207.106.54.37 slip166-72-116-215.tx.us.ihn.net/166.72.116.215 ppp105.brandywine.net/207.106.54.37 ws-207-215-129-153.brawleyanline.can/207.215.129.153 slipl29-37-206-151.in.us.ihn.net/129.37.206.151 ppp105.brandywine.net/207.106.54.37 ws-207-215-129-153.brawleyonline.ca/207.215.129.153 ppp105.brandywine.net/207.106.54.37 ws-207-215-129-153.brawleyonline.an/207.215.129.153 DallaADP42-16.SplitRock.net/209.156.42.16 ws-207-215-129-153.brawleyonline.canv207.215.129.153 IllasTADP42-16.SplitRock.net/209.156.42.16 ascend33.netrover.can/205.209.21.34 st227.d50.tazewell.k12.il.us/207.63.38.227 ws-207-215-129-153.brawleyonline.can/207.215.129.153 Da11asTXDP42-16.SplitRock.net/209.156.42.16 we-207-215-129-153.brawleyonline.canV207.215.129.153 152.34.24.28/152.34.24.28 ws-207-215-129-153.brawleyonline.can/207.215.129.153 ascend33.netrover.can/205.209.21.34 ws-207-215-129-153.brawleyoline.o-n/207.215.129.153 ws-207-215-129-153.brawleyonline.can/207.215.129.153 ws-207-215-129-153.brawleyonline.can/207.215.129.153 ws-207-215-129-153.brawleyonline.cn/207.215.129.153 we-207-215-129-153.brawleyonline.can/207.215.129.153 we-207-215-129-153.brleyonline.can/207.215.129.153 ws-207-215-129-153.brawleyonline.can/207.215.129.153 w-207-215-129-153.brwleyanline.can/207.215.129.153 ws-207-215-129-153.brawleynline.can/207.215.129.153 ws-207-215-129-153.brawleyonline.caV207.215.129.153 ws-207-215-129-153.brawleyonline.om/207.215.129.153 w-207-215-129-153.brwleyonline.crV207.215.129.153 we-207-215-129-153.brawleyanline.can/207.215.129.153 ws-207-215-129-153.brawleycnline.can/207.215.129.153 7 .215.129.153 ws-207-215-129-153.brleyonline.can/20 ws-207-215-129-153.brawleyonline.cxW207.215.129.153 168.28.82.147/168.28.82.147 209.2.245.88/209.2.245.88 209.2.245.88/209.2.245.88 209.2.245.88/209.2.245.88 209.2.245.88/209.2.245.88 209.2.245.88/209.2.245.88 oismepc.uio.n/129.240.209.242 209.2.245.88/209.2.245.88 oisenepcl.uio.no/129.240.209.242 federal-pn3-04-165.nnbell.net/207.252.105.165 168.99.169.63/168.99.169.63 168.28.82.149/168.28.82.149 168.28.82.149/168.28.82.149 tor-pn-3-93.netrover.can/205.209.27.93 besttsl2c90.ntnet.nb.ca/207.179.185.96 pp-207-193-28-7.snantx.swbell.net/207.193.28.7 7 tor-pn--3-93.netroe.can205.209.2 .93 btstts2c90.ntnet.nb.a/207.179.185.96 tor-pn-3-93.netrover.can/205.209.27.93 pn3-ip134.kent.net/207.81.19.134 pn3-ip134.kct.net/207.81.19.134 ge.media.mit.edu/18.85.11.175 pn3-ip134.kent.net/207.81.19.134 ge.neia.mit.edu/18.85.11.175 166-133-92.ipt.aol.cn/152.166.133.92 ge.nedia.mit.edu/18.85.11.175 pn3-ip134.kmt.net/207.81.19.134 166-133-92.ipt.aol.canV52.166.133.92 7 8 9 34 . 1.1 .1 p3-ip134.ket.net/20 pn±3-ip134.koet.net/207.81.19.134 pn3-ip134.kmt.net/207.81.19.134 nexll-21.stc.net/208.210.134.149 sdn-ts-002flhhilP06.dialsprint.net/206.133.79.41 megalon-34.opmface.ca/209.89.24.44 193.212.10.61/193.212.10.61 158.103.102.13/158.103.102.13 k56-ip-240.therarp.net/205.212.95.240 207.163.53.23/207.163.53.23 121 130 82 480 206 410 421 276 356 100 136 1116 685 218 41 331 238 300 213 269 704 1836 422 1948 1189 300 651 371 311 146 0 121 244 58 124 470 156 1188 321 235 522 2045 236 133 49 229 366 376 369 399 357 1307 1042 1417 347 1338 15 127 1270 86 801 1 239 222 3414 68 83 288 96 201 318 441 98 943 134 171 175 83 0 2212 902 726 27 290 398 87 147 ip address of player 79 84 usr50-dialup2O.mix2.Boston.nci.net/166.55. 79 . 4 6 usr50-dialup20.mix2.Boston.noi.net/166 .55. 7 .8 4 usr50-dialup20.mix2.Boston.nci.net/1 6.55. 9.8 slip166-72-161-154.tx.us.ihm.net/166.72.161.154 7 9.84 usr50-dialup2O.mix2.Boston.nci.net/166.55. 4 7 2.161.15 slipl66-72-161-154.tx.us.in.net/166. slip166-72-161-154.tx.us.ihn.net/166.72.161.154 ws-207-215-129-118.brawleyonline.can/207.215.129.118 lCustl09.tnt8.lax3.da.uu.net/153.37.75.109 206.144.90.176/206.144.90.176 ws-207-215-129-118.brawleyonline.caV207.215.129.118 8 ws-207-215-129-118.brawleymline.con/207.215.129.11 8 ws-207-215-129-118.brawleyonline.coan/207.215.129.11 ppp046.au.centuryinter.net/209.142.147.60 pp105.brandywine.net/207.106.54.37 ptrmiO-sh8-port206.snet.net/204.60.42.206 194.125.61.188/194.125.61.188 1out141.tnt21.at12.da.uu.net/153.36.124.141 p16-39.tstonranp.can/206.55.137.39 li2stl4l.tnt21.atl2.da.uu.net/153.36.124.141 ppp-207-215-85-38.scnOl.pacbell.net/207.215.85.38 7 38 rc-pnl-05.enetis.net/208.141.21 3 2 238 .67 7 .1 . . media3.creativity.se/19 ppp-207-215-85-38.scnD1.pacbell.net/207.215.85.38 ppp-207-215-85-38.scnOl.pacbell.net/207.215.85.38 7 8 38 2 .215.5. ppp- 07-215-85-38.sczn01f.pacbell.net/20 lCust206.tnt2.krkl.da.uu.net/153.37.252.206 198.236.73.165/198.236.73.165 141.133.118.182/141.133.118.182 eagan-rip08.cray.orn/204.73.50.8 8 7 3.50. eagan-rip88.cray.caun204. engan-rip08.cray.canV204.73.50.8 eagan-ripO8.cray.can/204.73.50.8 73 .50.8 eagan-rip08.cray.can/204. w-207-215-129-138.brawleyonline.can/207.215.129.138 ws-207-215-129-126.brawl e yonline.an207.215.129.126 ws-207-215-129-126.brawleyonline.can/207.215.129.126 29 7 ws-207-215-129-126.brawleyonline.can/20 .215.1 .126 2 7 17.san-francisco-15.ca.dial-access.att.net/12.64.16 6 .1 ws-207-215-129-126.brawleyanline.oan/207.215.129.12 spc-isp-van- uas-36-13.sprint.ca/209.148.184.214 np99mnden173.tusco.net/207.206.99.173 np99noden73.tusco.net/207.206.99.173 np99oden173.tusco.net/207.206.99.173 np99nrden73.tuso.net/207.206.99.173 np99noden173.tuso.net/207.206.99.173 7 0.121 121.lexington-01.ky.dial-access.att.net/12.66. 7 73 .206.99.1 np99ndsen173.tuso.net/20 7 7 np99dedn13.tuco.net/207.206.99.1 3 ts48ipl95.cadvision.canV207.228.72.195 ts48ip195.cadvision.c-rn207.228.72.195 ts48ip195.cadvision.cau207.228.72.195 8 6 . 1 techl2.javnet.can/209.94.12 0 port06l.vta.fishnet.net/205.216.133.21 techl1.javanet.can/209.94.128.60 c1005378-a.plstnl. sfba. xre. ca/24.1.96.9 c1005378-a.plstnl.sfba.hane.can24.1.96.9 port06l.vta.fishnet.net/205.216.133.210 techll.javanet.ar/209.94.128.60 8 202-38-218.ipt.ol.o-nr/152.202.38.21 ttyl46.softdisk.caV208.143.104.82 1Cust234.tnt8.lax3.da.uu.net/153.37.75.234 1Cust234.tnt8.lax3.da.uu.net/153.37.75.234 202-38-218.ipt.aol.cn/l52.202.38.218 6 3 93 .10 . p29-Q-hn5.dialup.xtxa.o.nz/203.9 ts7-27.frd.cyberhighwy.net/209.161.34.191 cybersl5dl39.ed.vave.shaw.ca/24.64.15.139 ts7-27.frd.cyberhighway.net/209.161.34.191 29 p -m2-hn5.dialup.xtra.co.nz/203.96.103.93 }ost-209-138-13-9.sg.bellsouth.net/209.138.13.9 host-209-138-13-9.sh2.bellsouth.net/209.138.13.9 hst-209-138-13-9.shg.bellsouth.net/209.138.13.9 host-209-138-13-9.sbg.bellsouth.net/209.138.13.9 3 3 37 1cust15.nx18.santa-clara.ca.m.uu.net/15 . .15 .15 1Cistl5.rnx18.santa-clara.ca.s.uu.net/153.37.153.15 7 dal-tsal6-35.cyberranp.net/207.158.8 .99 SY-A04-pool-140.tnns.net.au/139.134.90.140 slip-32-100-115-98.ny.us.ihn.net/32.100.115.98 166-148-97.ipt.ol.ccn/152.166.148.97 1Custl44.tntl.det2.da.uu.net/153.34.37.144 1Custl44.tntl.det2.da.uu.net/153.34.37.144 8 9 173-118-29.ipt.aol.ccmr/152.173.11 .2 173-118-29.ipt.aol.cc/l52.173.118.29 173-118-29.ipt.aol.cc/152.173.118.29 nbtel3-243.nbtel.net/207.179.142.243 tntl-42.focal-chi.ngsinet.net/209.81.175.42 id# 2739 2740 2741 2742 2743 2744 2745 2746 2747 2748 2749 2750 2751 2752 2753 2754 2755 2756 2757 2758 2759 2760 2761 2762 2763 2764 2765 2766 2767 2768 2769 2770 2771 2772 2773 2774 2775 2776 2777 2778 2779 2780 2781 2782 2783 2784 2785 2786 2787 2788 2789 2790 2791 2792 2793 2794 2795 2796 2797 2798 2799 2800 2801 2802 2803 2804 2805 2806 2807 2808 2809 2810 2811 2812 2813 2814 2815 2816 2817 2818 2819 2820 2821 2822 2823 2824 127 160 255 487 tt1-42.foca-chi.negoinet.net/209.81.175.42 und-s4p3.und.Noak.edu/134.129.135.152 2825 2826 225 52 21 181 102 49 263 869 89 30 133 167 211 126 81 55 446 256 262 1262 174 194 928 3362 582 73 328 880 1323 311 215 872 tntl-42.focal-chi.megsinet.net/209.81.175.42 8 ftw-tsa5-48.cyberranp.net/207.158.119.4 tek.engin.und.uidch.edu/141.215.9.49 8 47 88 4 .1 . 0.10 apc11.ph.lham.ac.uk/1 2827 2828 2829 2830 2831 2832 2833 2834 2835 2836 2837 2838 2839 2840 2841 2842 score duration baddias 400 150 4500 4650 3450 9550 5000 4000 3250 3150 8100 4100 3000 0 6150 4000 5900 2750 4000 4150 19400 3500 24650 9850 3900 5850 6150 6150 2950 0 1100 1250 550 1250 3250 1800 8700 3000 5350 3500 10950 3500 1300 800 3850 6050 5450 9350 8550 2400 10050 7550 10500 6700 10800 600 4350 9650 500 3300 50 3350 3100 23100 1650 0 1450 400 3050 4750 3050 1000 4550 2550 4250 4200 1350 0 13550 10100 2500 0 1250 0 1000 3050 123 116 177 115 188 205 157 99 114 136 232 127 59 361 274 248 173 132 241 302 640 271 357 477 124 229 352 178 194 1 88 91 28 60 111 55 237 78 230 91 599 145 49 49 133 131 386 292 232 72 205 193 243 408 504 48 143 1329 877 443 34 249 137 1011 161 47 184 64 325 118 125 40 184 188 115 76 124 2 476 375 314 71 123 150 102 70 0 0 17 10 12 21 8 9 6 7 17 8 5 0 12 9 15 11 9 9 43 9 46 21 6 12 12 13 6 0 4 5 2 4 6 3 19 5 11 8 36 13 5 3 9 18 11 22 20 9 28 15 20 21 25 1 8 26 2 6 0 7 12 86 5 0 5 1 5 9 6 4 11 4 10 8 2 0 34 25 5 0 5 0 1 8 hits 60 3 148 87 131 204 190 101 36 42 199 91 30 4 105 51 99 81 139 73 581 103 551 277 89 142 97 139 45 0 62 45 38 56 86 18 233 40 85 98 243 108 45 16 70 162 93 185 157 78 244 195 341 131 259 6 51 172 47 45 1 47 110 474 33 34 58 90 39 67 41 76 109 29 56 48 22 0 506 213 49 11 60 9 22 43 9:40:35AM 9:41:53 AM 6850 7000 130 637 12 16 9:43:53AM 10:04:59 A14 AM 10:14:25 AM 10:26:45 AM 10:27:29 10:27:52 024 10:28:38 A14 AM 10:37:52 AM 10:57:09 11:08:49824 11:42:52 AM 11:49:05 A14 11:50:23 AM 11:52:53 AM 11:55:01 11:56:56 AM 9200 3650 1950 7600 1700 3950 10500 33600 1600 3000 3250 6850 7800 7750 4450 3900 181 181 138 249 32 73 1016 608 214 95 152 357 528 190 114 373 18 8 3 17 6 8 26 64 5 5 13 21 29 15 8 8 date 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980501 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 time 5:25:20 PM 5:27:33 2M 5:30:48FM 5:33:350M 5:34:122M 5:37:240M 5:40:192M 6:17:052M 6:18:48 2M 6:20:2524 6:21:1324 6:23:35EM 6:24:492M 6:35:23 6:35:3924 6:38:04EM 6:51:10R4 6:54:41 6:59:47 6:59:59 7:14:12 7:16:132M 7:22:2424 7:22:2524 7:24:462M 7:29:012M 7:51:152M 8:04:452M 8:14:51 8:51:13 8:52:56 8:54:54 8:55:38 8:56:56 8:58:15 9:05:22 24 9:09:35 24 9:11:08 2M 9:11:34 2M 9:13:34 2M 9:43:47 24 9:47:27 2M 9:48:31 2M 9:49:34 9:52:02 9:54:31 10:00:362M 10:02:17EM 10:06:51 10:44:04 10:47:49 10:51:172M 10:51:37 11:02:112M 11:13:332M 11:22:412M 11:25:212M 11:26:532M 11:29:452M 11:35:572M 11:41:132M 11:48:372M 11:51:122M 11:53:192M 11:59:2224 12:05:45AM 12:05:52AM 12:07:04AM 12:08:56AM 12:09:45AM 12:12:05 AM 12:13:01 A14 12:16:20 AM 1:33:01 AM 1:35:09 AM 3:57:50 AM 6:37:10 AM 7:42:44AM 7:48:12 AM 8:29:57 AM 8:35:27 A14 8:55:58 AM 8:58:19 AM 9:01:06 AM 9:13:50 A14 9:38:08 AM 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 M M M M M M M M M M M M M M M M M M M M GLOM:Information Agglomerates shots mpc11.ph.ham.ac.uk/147.188.40.108 btstts11c06.nbnet.nb.ca/198.164.242.108 und-as4p3.und.bb18k.edu/134.129.135.152 apcll.ph.bham.ac.uk/147.188.40.108 ts003d04.ind-in.octric.net/206.173.97.64 6 6 4 2 .12.11 . 5 psx6.bayareaca.net/20 nanitou3-9.usask.ca/192.139.76.73 76 7 3 . mnnitou3-9.usask.ca/192.139. 2 7 4 78 4 . . . 1 41.denver-16-17rs.oo.dial-access.att.net/1 nnnitou3-9.usask.ca/192.139.76.73 onnitou3-9.usask.ca/192.139.76.73 2 7 4 78 4 . . . 1 41.denver-16-17rs.co.dial-access.att.net/1 122 date 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 time 12:02:33 FM 12:24:13 12:25:05 12:26:31 12:26:422M 12:28:32 12:30:022M 12:32:022M 12:33:432M 12:34:092M 12:35:052M 12:37:572M 12:38:33R4 12:41:342M 12:41:56 12:46:0524 12:49:0724 12:50:394 12:51:582M 1:26:57 1:30:30 1:35:19 1:43:552M 2:04:29 24 2:06:57 2M 2:08:56 2M 2:11:1124 2:40:362M 2:41:402M 2:42:23R4 2:50:512M 2:57:382M 3:04:202M 3:09:132M 3:13:53 3:18:50R4 3:22:59 3:23:0924 3:27:1724 3:30:582M 3:31:052M 3:36:312M 3:40:3424 3:43:172M 3:59:49 4:08:3224 4:12:222M 4:19:59 4:36:09 4:43:40 4:51:58 4:57:09 5:06:2824 5:13:31 5:43:55 5:45:122M 5:46:312M 5:48:2224 6:01:392M 6:04:432M 6:14:232M 6:31:52 6:32:54 24 6:37:15 6:42:52 6:45:07 6:48:38 6:52:06 6:52:4524 6:52:49 6:55:1024 6:57:11 6:58:4924 6:59:162M 7:04:2524 7:13:42 2M 7:16:4924 7:21:302M 7:36:1724 7:39:4724 7:41:29 2M 7:48:17 7:52:44 7:55:0224 7:55:27 EM 8:00:0724 8:03:51 8:09:03 8:11:43 2M 8:19:49 24 8:29:58 2M 8:31:52 2M 8:32:06 24 8:33:4724 8:38:23 2M 8:44:31 2M 8:50:12 8:50:17 8:56:462M 8:59:59 2M 9:01:35 2M 9:09:05 2M 9:11:37 2M 9:15:18 2M M M M M M M M M M M M M M M M M M M M M M M M M M M M M M M M M score 0 0 0 250 2500 4950 4050 1900 2400 550 1900 1100 7650 3550 4400 4750 3600 800 4600 2450 0 9000 3900 800 3550 4050 2250 600 0 5200 8200 3650 0 3100 4550 2300 3650 4950 3400 5750 9000 6850 4600 16100 11400 4700 5800 0 3000 0 6250 13750 4850 5550 3400 1250 3250 1500 0 8200 3950 3150 1900 6300 4500 4250 9350 3050 0 0 0 350 1250 7050 5950 4450 4800 1950 300 8300 2350 10600 450 2250 0 3800 5100 0 0 600 2450 0 0 1250 3600 6450 5450 9400 2900 4550 2750 6150 2100 3250 duration 46 100 37 68 161 155 195 103 106 82 65 267 376 198 186 234 149 349 154 216 37 468 487 126 153 342 128 52 48 289 293 258 118 160 265 162 130 242 239 207 451 317 514 704 431 177 215 54 311 8 214 296 106 242 151 37 64 93 239 256 197 87 46 154 490 167 201 150 7 3 119 146 83 228 320 221 173 149 87 408 296 494 100 104 64 239 204 133 141 63 191 88 4 81 259 307 664 329 133 175 77 286 143 204 GLOM:Information Agglomerates baddies 0 0 0 1 4 10 8 3 3 1 3 4 16 6 9 12 10 1 10 7 0 22 7 3 7 15 6 0 0 12 20 8 0 12 9 4 7 12 8 16 28 18 10 42 32 9 12 0 7 0 14 39 11 11 8 2 6 3 0 18 10 7 5 15 11 9 20 8 0 0 0 1 2 28 13 12 10 5 0 17 4 27 0 9 0 7 12 0 0 1 5 0 0 5 7 18 12 20 6 10 11 12 8 13 hits 0 0 0 5 34 75 53 20 32 24 42 60 214 47 70 116 122 15 56 80 6 170 161 33 50 134 60 15 4 70 173 64 0 127 97 31 44 76 44 108 218 105 70 493 248 106 147 1 42 0 202 316 65 182 45 14 35 106 0 180 108 74 108 108 77 88 194 43 0 0 5 13 42 184 98 104 74 87 6 174 42 258 9 62 0 61 86 0 0 6 39 23 0 59 42 140 77 183 64 64 103 101 63 82 of player shots ip address 0 0 0 40 133 283 234 71 148 107 99 115 1022 136 777 1439 520 365 925 156 9 472 328 54 155 531 165 20 62 373 457 156 0 408 621 123 120 240 227 615 751 479 293 2613 809 274 316 48 212 0 1054 1944 135 410 149 32 87 199 4 427 367 265 298 239 376 247 462 436 0 0 37 80 80 619 371 533 490 165 21 392 247 675 38 176 0 195 300 0 0 13 381 87 1 173 385 709 1516 639 130 397 254 193 136 472 djaafar.ne.mediaone.net/24.128.59.12 ntp20.cac.psu.edu/128.118.140.20 nhppp20.cac.psu.edu/128.118.140.20 2 8 8 .11.140.0 nbppp20.cac.psu.edu/12 xlate2-70.office.aol.ccrV204.148.99.70 dsr.db.dk/130.226.186.56 np20.cac.psu.edu/128.118.140.20 2 0 ntppp2.cac.psu.edlu/128.118.140. 207-172-52-203.s203.tntl.brd.erols.cco207.172.52.203 199.250.252.14/199.250.252.14 207-172-52-203.s203.tntl.brd.erols.cam/207.172.52.203 98 adnline243198.adnc.ccr/206.251.243.1 nkpp20.cac.psu.edu/128.118.140.20 adnline243198.adnc.ccs/206.251.243.198 ntppp20.cac.psu.edu/128.118.140.20 npip2O.cac.psu.edu/128.118.140.20 noipp20.cac.pu.edu/128.118.140.20 246.kansas-city-06.n.dial-access.att.net/12.66.101.246 2 ntppp2O.coac.psu.edu/128.118.140. 0 crinoth-3.ndn.rnd.execpc.ccm/169.207.45.19 205.130.199.130/205.130.199.130 crinoth-3.ndn.rnd.execpc.cxxn/169.207.45.19 crinoth-3.ndn.rnd.exeqcp.ccm/169.207.45.19 outh.net/207.53.6.169 host-207-53-6-169.atl.bell 98.birminghl01.al.dial-access.att.net/12.67.64.98 id# 2843 2844 2845 2846 2847 2848 2849 2850 2851 2852 2853 2854 2855 2856 2857 2858 2859 2860 2861 2862 2863 2864 2865 2866 2867 2868 0 2 2 2 3 2869 s15.netfox.net/2 8. 2 . 1 .15 2870 ctvO70.ctv.es/195.57.143.70 7 7 2871 .143.0 ctv807O.ctv.es/195.5 2872 n.net/207.253.121.131 pp131.121.nrtl.vidotr 6 20 8 2 7 2873 5. . 1 217.new-orleans-01.la.dial-access.att.net/12. 0 2874 9 k56aip09.mdis.net/209.44.12.1 7 2875 2.66.152 207-172-66-152.s25.as7.nrf.erols.can/207.1 2 69 67 2876 .1 .19 169.cleveland-01.oh.dial-acces.att.net/12. 169.cleveland-01.oh.dial-access.att.net/12.67.192.169 2877 2878 tor-p±-3-90.netrover.ccm±/205.209.27.90 2879 b-1.dialup.northernnet.ccm/205.139.165.71 2880 tor-pg-3-90.netrover.can/205.209.27.90 6 7 2881 hb-1.dialup.northernnet.ct/205.139.1 5. 1 2882 hb-1.dialup.northernnet.ccn/205.139.165.71 2883 tor-pm-3-90.netrover.oan±/205.209.27.90 7 2884 1 hb-1.dialup.northennet.cun/o205.139.165. 2885 crinoth-9.ndn.rnd.execpc.canVl69.207.45.25 2886 gsv105.gator.net/207.243.60.105 7 2887 noden157.nwidt.canV199.120.82.15 2888 1ICst48.nex12.cleveland.oh.neuu.net/153.35.13O.48 48 3 3 2889 lCust48.nux±12.cleveland.oh.n.u.net/15 . 5.130. 2890 198.30.208.63/198.30.208.63 3 2891 2.166 166.los-angele-O01.ca.dial-access.att.net/12.64. 2892 HAYmrN-7.MIT.E[U/18.51.1.37 us-207-215-129-147.brawleyonline.ocm/207.215.129.147 2893 us-207-215-129-147.brawleyonline.ccnV207.215.129.147 2894 2895 p018.tsvr4.rnx.canV199.190.118.19 2896 hb-1.dialup.northennet.canV205.139.165.71 2897 tsl-04.omld.cyberhigh±y.net/209.161.17.71 2898 tol-04.nld.cyberhighmy.net/209.161.17.71 7 7 2899 .1 tsl-04.mld.cyberhighay.net/209.161.1 2900 tol-04.mld.cyberhighmy.net/209.161.17.71 2901 port89-202.uss.net/209.100.89.202 6 2 67 2902 .10 . .196 pn3mbrl-67-196.intrepid.net/20 2903 ppp117.brandywine.net/207.106.54.49 7 9 43 3 2904 tin35.spso.net/20 .14 .2 . 3 5 2905 tin35.spwo.net/207.149.243. 5 2906 daga2pp2l.alltel.net/166.102.118.22 2907 2908 56K-004.MaxIN4.pck.net/209.144.230.4 2909 hn85-134.hil.ccrnguserve.can/'206.175.96.134 2910 nbl5gpp6O.cac.psu.edu/128.118.72.60 77 3 2911 hlfx09-34.ns.synpatio.ca/142.1 3 77 .10.10 2912 ca/142.1 h1fx09-34.ns.synpati.c 3 77 .10.10 2913 .10.10 7 7 26 h1fx09-34.ns.synpatic.ca/142.1 2914 26.bridgeton-10.no.dial-access.att.net/12.6 .1 . 2915 26.bridgeton-10.no.dial-access.att.net/12.67.17.26 3 77 2916 .10.10 7 7 h1fx09-34.ns.syrpatico.ca/142.1 2917 .26 .1 26.bridgeton-10.no.dial-access.att.net/12.6 8 96 2918 dip226.inav.net/205.160.20 . 6 2919 dip226.inav.net/205.160.208.9 2920 lcust229.tnt4.krkl.da.uu.net/208.254.1.229 2921 dialup5-3-07.doitnow.coen/207.211.43.135 2922 ontrldhcp27.spl.org/209.63.97.27 2923 dialup5-3-07.doitnow.ccr207.211.43.135 7 7 2924 .2 ontrldhcp27.spl.org/209.63.9 114.kansas-city-05.o.dial-access.att.net/12.66.100.1142925 2926 afoon-dyn66.afcon.net/209.26.60.66 2927 204.185.202.44/204.185.202.44 2928 afcon-dyn66.afcon.net/209.26.60.66 2929 afcon-dyn66.afcon.net/209.26.60.66 2930 1Cust25.tnt2.o.d.uu...net/208.250.78.205 2931 1Cust2O5.tnt2.orll.da.uu.net/208.250.78.205 2932 storO3p33.storm.ca/207.245.246.161 2933 207.33.152.171/207.33.152.171 2934 2935 s42.netfox.net/208.222.213.42 2936 3 4 2937 42.netfox.net/208.222.21 . 2 7 2938 ttyD22.redding.snowecrest.net/209.148.36.6 2939 7 2940 ttyD22.recdincg.sicnrrest.net/209.148.36.6 2941 prp286.1r.centuryinter.net/209.142.153.65 2942 2 2943 2944 ttyD16.recding.snowcrest.net/209.148.36.23 67 7 2945 80.ojus-01.fl.dial-acces.att.net/12. 7 0. 67 .80 2946 80.ojus-01.fl.dial-access.att.net/12. 0. .80 sl5.netfox.net/208.222.213.15 IC-3.IC.Omton.MN.US/209.114.2.100 s42.netfox.net/208.222.213.42 s42.netfox.net/208.222.213.42 e42.netfox.net/208.222.213.42 pp286.lr.coituryinter.net/209.142.153.65 mP286.1r.cturyinter.net/209.142.153.65 123 date time 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980502 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 9:19:49 PM 9:21:28 R4 9:28:57 9:29:14EM 9:30:232M 10:05:47 43 3 2 2M 10: : 7 2M 10:45:5 2M 11:07:230M 11:19:562M 11:23:122M 11:27:552M 11:37:572M 11:39:552M 2M 11:40:55 48 11: 5 1 :59 17 11: : 12:23:25 12:26:58 12:32:53AM 12:58:22A4 1:04:11AM 1:06:44AM 2:08:23AM 2:08:32AM 2:14:06A14 2:14:22AM 2:17:20AM 2:21:01AM 2:22:512M 2:23:06AM 3:05:502M 3:08:11AM 3:54:17AM 3:57:382M 3:59:54AM 4:03:40AM 4:08:04A4 5:02:11AM 5:03:38AM 6:41:47A4 6:46:13AM 7:12:08A4 7:13:04 5 58 AM 7 :1 : AM 7:39:01AM 7:42:28AM 7:48:21A4 7:49:31A4 7:52:44AM 7:53:10A4 7:54:15AM 7:56:58A4 7:58:33A4 8:00:03A24 8:02:04A4 8:07:31AM 8:30:32AM 8:30:32 AM 8:31:30 AM 8:35:33 AM 8:39:53 AM 8:45:04 AM 8:48:13 AM 8:52:32AM 9:01:02AM 9:08:45AM 9:10:21AM 9:13:18AM 9:13:49A4 9:25:55A24 9:31:45A4 9:32:19A4 9:35:20AM 9:35:50AM 9:40:00AM 10:13:54 AM 10:14:13 AM AM 10:17:26 AM 10:22:39 10:22:53 A4 AM 10:26:41 10:26:49M AM 10:28:05 A4 10:28:20 A4 10:30:44 AM 10:57:43 AM 11:00:55 11:13:54A24 11:15:41A24 11:15:572M 11:18:03AM 11:19:03AM AM 11:24:15 11:27:20AM 11:28:22A4 11:33:27 AM 11:34:23 AM 11:35:40 AM 11:39:29AM 11:39:57AM 11:49:49A4 11:52:38A4 11:54:54A4 M M M M M score 6400 4250 20600 12250 5050 350 10100 4500 1900 4500 4600 5100 0 0 0 3100 4100 0 250 450 3400 8400 5300 3000 0 6700 0 3750 5600 3500 0 3700 4150 2900 4100 3150 4400 6300 1750 2450 4350 7250 3350 1300 7800 9400 0 0 8100 6000 250 11150 3900 3500 4950 4800 6750 3500 7600 1050 3200 7000 3750 4100 3600 3750 8900 6500 2400 8400 0 2700 9000 5600 7350 0 1350 5550 0 650 3400 0 950 3200 0 1900 8450 9000 3700 7400 100 3800 2400 3650 5000 0 0 2450 1250 5300 3450 3300 350 3000 duration 256 186 532 255 140 86 397 435 89 244 180 235 69 76 44 105 107 3 194 156 165 330 135 210 4 319 4 162 202 93 3 133 127 142 187 119 209 248 110 71 212 253 91 37 152 262 424 1 278 170 101 337 238 301 170 185 288 102 338 214 236 237 109 258 93 280 445 486 173 737 24 147 198 310 230 157 314 230 2 95 206 28 71 137 4 111 158 175 169 322 59 108 101 193 168 37 87 134 117 319 182 143 113 241 GLOM:Information Agglomerates id# baddies hits shots ip address of player 20 8 82 24 11 0 30 9 3 9 11 13 0 0 0 12 8 0 0 1 8 27 10 6 0 16 0 8 12 12 0 6 8 11 9 6 10 12 3 5 9 18 7 5 22 22 0 0 26 15 0 28 8 7 18 15 20 7 24 4 7 14 6 10 8 8 19 22 4 32 0 8 19 14 14 0 5 22 0 1 7 0 3 7 0 3 18 16 7 20 0 8 4 7 13 0 0 4 2 11 8 6 1 6 126 55 467 269 87 17 234 58 26 60 82 79 0 0 0 100 46 0 5 27 95 183 78 41 1 115 0 49 82 121 0 56 67 93 52 39 75 122 36 36 54 107 76 84 165 206 7 0 170 147 5 223 77 47 161 107 177 55 196 56 47 137 40 87 48 54 163 186 26 166 0 73 216 105 148 0 61 130 0 7 60 0 41 46 2 21 162 193 71 133 6 48 29 61 93 59 7 42 14 127 50 39 28 62 512 104 2328 550 342 67 1511 331 103 300 184 365 1 0 0 306 248 0 20 56 233 657 240 141 1 411 4 176 358 309 0 127 251 504 436 222 512 497 177 104 125 290 205 133 698 643 18 0 421 290 11 670 319 146 325 227 331 166 611 198 630 315 131 151 152 156 488 1061 61 684 0 309 368 305 502 0 506 297 0 12 355 0 72 159 5 110 319 409 266 976 26 145 54 228 255 64 21 170 67 340 261 134 48 177 .80 80.oju-O01.fl.dial-access.att.net/12.70.6 gard.aces.net/205.243.37.119 80.ojus-01.fl.dial-access.att.net/12.70.67.80 hdn95-107.hil.cr-puserve.canV209.154.57.107 mn-104.au2.m.uunet.de/149.229.231.104 203-96-99-203.ipnets.xtra.mo.nz/203.96.99.203 7 spc-isp-van-uas-36-7.sprint.ca/209.148.185. 3 3 63 5.1 5. user-381d15b.dialup.mcindspring.can/209.86.132.171 7 33 2.13 3 ppp-206-171-172-133.sktnl1.pacbell.net/206.171.1 72 7 pp-206-171-172-133.sktnl.pacbell.net/206.1 71.1 7 .1 33 1.1 opp-206-171-172-133.sktnOl.pacbell.net/206.1 22 2.1 7 7 2 .137 .1 . 0 sd11.california.Internet-Coffee.oxn20 .12.220 sdll.california.Internet-Coffee.cm/207.137.12.220 206.97.184.211/206.97.184.211 206.97.184.211/206.97.184.211 238.portland-03.or.dial-access.att.net/12.65.66.238 6 6 238 5.6 . 238.portland-03.or.dial-access.att.net/12. 4 7 .33.5 7 pgrad5.eee.utas.ecc.au/131.21 3 3.15 1Cstl35.tnt6.seal.da.uu.net/208.253. 3 73 . .135 1Cout35.tnt6.seal.da.uu.net/208.25 10Cstl35.tnt6.seal.da.uu.net/208.253.73.135 7 7 .11 h117.s57.ts.hinet.net/168.95.5 h117.s57.to.hinet.net/168.95.57.117 h117.s57.ts.hinet.net/168.95.57.117 h117.s57.to.hinet.net/168.95.57.117 h117.s57.to.hinet.net/168.95.57.117 hll7.s57.to.hinet.net/168.95.57.117 h117.s57.ts.hinet.net/168.95.57.117 7 h117.s57.ts.hinet.net/168.95.57.11 SY-A21-pool-185.tnn.net.au/139.134.96.185 8 5 SY-A21-pool-185.tnns.net.au/139.134.96.1 h99.s21.ts3O.hinet.net/163.30.21.99 h99.s21.ts3O.hinet.net/163.30.21.99 h99.s21.ts3O.hinet.net/163.30.21.99 h99.s21.ts3O.hinet.net/163.30.21.99 h99.s21.ts30.hinet.net/163.30.21.99 7 7 dialup-70.Napa.CA.InterX.Net/209.0.3 7 .70 .0 dialup-70.Napa.CA.InterX.Net/209.0.3 7 zzkyau.dialin.uq.net.au/203.101.23 3 7 .183 zzkyau.dialin.uq.net.au/203.101.23 24 .18 5 mnjy2.nogd.cam.ac.uk/131.111.221. mnjy2.nagd.cam.ac.uk/131.111.221.245 rnjy2.nmgd.cam.ac.uk/131.111.221.245 6 87 2. 196-31-162-87.iafria.cun/196.31.1 heres-apl-digital-ip193-58.athmet.net/209.103.193.58 8 37 7 8 62 .1 . .1 wisc3-aOl.sc.tds.net/20 0 gp2-68.eisa.net.au/203.63.233.14 ppp2-68.eisa.net.au/203.63.233.140 166-248-61.ipt.aol.ca/152.166.248.61 7 .192 dhcp-893508532.qualaom.cunVl29.46.23 pg,2-68.eisa.net.au/203.63.233.140 166-248-61.ipt.aol.cunV152.166.248.61 opp2-68.eisa.net.au/203.63.233.140 8 6 166-248-61.ipt.ol.can/152.166.24 . 1 166-248-61.ipt.aol.crsn/152.166.248.61 npts-03-22.imnet.net/206.112.140.176 client-151-197-114-14.bellatlatic.net/151.197.114.14 7 2947 2948 2949 2950 2951 2952 2953 2954 2955 2956 2957 2958 2959 2960 2961 2962 2963 2964 2965 2966 2967 2968 2969 2970 2971 2972 2973 2974 2975 2976 2977 2978 2979 2980 2981 2982 2983 2984 2985 2986 2987 2988 2989 2990 2991 2992 2993 2994 2995 2996 2997 2998 2999 3000 3001 3002 3003 3004 3005 3006 3 3007 0 3008 port-57-35.access.one.net/209.50.121.35 3009 76.newark-08.nj.dial-access.att.net/12.68.39.76 7 3010 opP3.voltage.net/208.15.104. 5 7 7 3011 ppp75.coladlp3.scsn.net/209.12.5 . 5 3012 dd24-045.dub.caopuserve.ocn/199.174.181.45 3013 dd24-045.dub.ccapuserve.cun/199.174.181.45 3014 dial-38-1--BI--01.ranp.together.net/208.13.202.38 3015 lCustl43.tntl.dothan.al.da.uu.net/208.254.21.143 8 9 3016 .1 5 hut3.southwind.net/206.53.9 3017 206.217.166.248/206.217.166.248 3018 184.new-york-28.ny.dial-access.att.net/12.68.135.184 63 3019 gate53.planet.fi/195.156.155. 3020 opp22.northnet.net/156.46.235.107 84 3021 184.new-york-28.ny.dial-access.att.net/12.68.135.1 3022 171-1-112.ipt.aol.ano/152.171.1.112 3023 173-226-229.ipt.aol.can/152.173.226.229 3024 okcasc3-121.flash.net/209.30.84.121 7 3025 4 tsOl4dl8.cup-ca.concentric.net/209.31.12.1 3 3026 8.45 ocal-pnl-28.mfi.net/205.161.2 4 6 3027 2.15 154.ft-worth-01.tx.dial-access.att.net/12.65.1 3028 sap2.cray.can/137.38.96.91 3029 202-165-60.ipt.aol.ccVl52.202.165.60 3030 204.244.96.97/204.244.96.97 3031 204.244.96.97/204.244.96.97 3032 205.211.60.28/205.211.60.287 3033 pp326.rtp.intx.net/209.42.198. 2 42 98 71 3034 09. .1 . 1 opp326.rtp.intrex.net/ 3035 npts-03-22.inenet.net/206.112.140.176 8 3036 bir.fellows.denios.ec/140.141.3.8 3037 208.20.8.54/208.20.8.54 3038 208.20.8.54/208.20.8.54 3039 mnxlppp-4.visn.net/209.115.29.53 3040 1Cust222.tnt3.seal.da.uu.net/208.253.65.222 3 6 22 2 3041 .65. 1Cust222.tnt3.sea1.da.uu.net/208.25 7 3042 3.11 lax-cal1-01.ix.netcon.cnV204.30. 3043 unio-csl-c-35.dial.bright.net/209.143.16.165 3044 user-381clig.dialup.idpring.o-n/209.86.6.80 3045 unio-ca1-cs--35.dial.bright.net/209.143.16.165 3046 202.137.1.142/202.137.1.142 3047 147.253.192.248/147.253.192.248 3048 205.211.60.113/205.211.60.113 92 2 2 3049 4. 40.1 dyn240ppp192.pacific.net.sg/210. 3050 208.11.231.85/208.11.231.85 s43.nextdim.can/205.2 sd11.california.Internet-Coffee.Ccm/207.13 sAl-al.dreamscape.canu/206.114.185.130 sAl-al.dreamscape.can/206.114.185.1 124 date 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 time 11:56:34 AM 11:57:30AM 12:13:45PM 12:18:58PM 12:20:15PM 12:21:329M 12:26:04FM 12:32:32FM 12:34:340M 12:38:35PM 12:40:468M 12:42:290M 12:44:550M 12:47:370M 12:49:4304 12:57:11R4 12:58:29 M 1:02:050M 1:02:340M 1:03:44098 1:04:2909 1:05:1608 1:05:2809 1:06:440M 1:07:560M 1:10:440M 1:12:4304 1:13:128M 1:14:0409 1:17:41R4 1:19:0609 1:20:42H4 1:20:57PM 1:25:42EM 129:21 0M 1:33:04 8M 1:36:43 0M 1:36:44 0M 1:38:40 1:39:19 81 1:41:468M 1:43:180M 1:44:370M 1:45:5709 1:48:40098 1:50:288M 1:51:088M 1:51:278M 1:53:520M 1:57:180M 2:00:1709 2:01:3089 2:01:418M 2:03:47EM 2:06:258M 2:07:078M 2:07:228M 2:09:058M 2:10:408M 2:11:050M 2:12:558M 2:13:338M 2:15:390M 2:21:320M 2:26:250M 2:28:54R4 2:31:4109 2:34:30 2:35:192M 2:37:312M 2:37:4028 2±37:462M 2:43:3528 2:46:1128 2:47:542M 2:49:0928 2:51:252M 2:51:322M 2:52:04 2:53:06 2:54:542M 2:56:37 3:00:52 3:08:212M 3:12:482M 3:13:072M 3:15:092M 3:28:11 2M 3:31:04 2M 3:31:05 28 3:32:28 2M 3:33:33 2M 3:37:222M 3±41:2328 3:45:502M 3:48:342M 3:52:272M 3:53:16 3:54:58 3:58:0928 3:59:3628 4:00:5128 4:03:132M 4:09:302M M M M M M M M M score duration baddies hits shots ip address of player id# 0 4100 3050 9200 6500 3750 3950 3550 1850 0 1800 1400 2400 5150 6500 9650 4850 5550 50 0 900 3450 1750 5350 1250 4000 0 13200 1800 5050 8200 6050 3750 3500 6600 4700 8950 1500 8050 2500 2450 8250 28600 2400 2400 1550 2000 18150 2700 3200 4800 600 5450 4800 30400 10000 2700 4150 3000 4200 8300 100 4950 1100 0 3000 2800 400 11650 4750 0 8800 4750 8850 5100 2300 6300 4400 7500 8000 5550 3100 7600 1550 36750 250 2750 7750 0 0 0 10350 10650 12050 11750 11900 1950 21150 9050 7600 8750 7550 4400 5600 91 87 236 297 122 61 158 287 91 89 201 86 131 220 110 207 63 300 139 43 86 267 86 263 130 152 69 798 65 200 346 781 180 206 267 168 390 42 320 196 127 260 461 232 131 06 123 391 115 121 347 287 166 215 577 388 150 342 86 205 306 114 258 99 2 162 151 111 413 336 75 182 296 221 193 79 150 130 234 305 186 88 239 187 1153 92 107 269 251 133 74 287 212 212 219 148 201 239 264 826 412 276 202 244 0 8 8 20 19 8 8 10 6 0 3 2 4 11 12 21 11 13 0 0 3 9 7 13 5 10 0 34 2 18 17 23 9 7 18 10 18 6 14 4 4 19 49 4 4 4 3 39 4 5 12 2 12 11 55 19 9 11 5 11 15 0 15 4 0 5 7 0 25 16 0 17 11 20 12 5 13 7 14 32 11 6 16 5 145 1 11 17 0 0 0 26 23 19 21 18 5 32 25 29 28 15 10 11 0 56 70 183 145 48 54 133 99 1 21 20 39 111 117 195 63 77 2 4 52 90 86 78 79 106 21 346 29 169 412 149 119 40 154 60 182 49 201 31 25 154 649 24 28 66 24 469 31 34 88 41 86 100 718 292 97 62 31 91 188 16 140 50 0 30 56 22 296 151 0 167 116 216 100 28 157 116 137 206 88 41 151 55 780 65 123 204 0 1 0 237 313 277 261 246 70 466 235 220 197 130 97 127 0 150 180 358 711 255 179 824 213 5 131 63 171 466 375 574 187 367 11 37 67 271 180 530 845 537 100 1716 320 1844 940 1937 2390 554 911 118 607 93 296 110 118 303 1444 175 100 121 106 1340 103 96 336 64 175 582 2076 710 331 194 240 416 378 22 790 103 0 134 399 34 655 1565 0 407 944 470 431 217 386 240 398 473 455 227 535 245 3239 535 667 991 0 2 1 735 762 551 854 544 174 928 995 1598 854 329 294 389 p03-14.hartford.dialin.ntplx.mn/204.213.188.114 141.164.138.172/141.164.138.172 SHR01822.DMf.UJL.J/138.237.149.216 DOM.'T1J.HJ/138.237.149.216 SER01822. 209.16.236.61/209.16.236.61 209.16.236.61/209.16.236.61 241.arlingtcn-06.va.dial-access.att.net/12.68.69.241 s09.ts4.rb.wizzards.net/206.100.190.89 s09.ts4.rb.wizzards.net/206.100.190.89 d97.nnb2.interaccess.ca/204.149.98.97 195.100.66.2/195.100.66.2 195.100.66.2/195.100.66.2 195.100.66.2/195.100.66.2 7 0.14.155 170-14-155.ipt.ol.can/152.1 170-14-155.ipt.ol.can/152.170.14.155 170-14-155.ipt.ol.can/152.170.14.155 7 4 0.1 .155 170-14-155.ipt.aol.aoVl52.1 129.109.155.141/129.109.155.141 pn2-68.vegas.infi.net/206.97.53.68 98.ntimi.videtron.net/207.253.98.66 ncdenwable066. 2 pn -68.vegas.infi.net/206.97.53.68 7 usr-x2-aln-08.libertyaccess.-n/s209.176.111.11 ±nderable066.98.ntimi.videotron.net/207.253.98.66 129.109.155.141/129.109.155.141 nodenrble066.98.ntimi.videtron.net/207.253.98.66 3051 3052 3053 3054 3055 3056 3057 3058 3059 3060 3061 3062 3063 3064 3065 3066 3067 3068 3069 3070 3071 3072 3073 3074 3075 3076 3077 3078 3079 3080 3081 3082 3083 3084 3085 3086 3087 3088 3089 3090 3091 3092 3093 3094 3095 3096 3097 3098 3099 3100 3101 3102 3103 3104 3105 3106 3107 3108 3109 3110 3111 3112 3113 3114 3115 3116 3117 3118 3119 3120 3121 3122 3123 3124 3125 3126 3127 3128 3129 3130 3131 3132 3133 3134 3135 3136 3137 3138 3139 3140 3141 3142 3143 3144 3145 3146 3147 3148 3149 3150 3151 3152 3153 3154 GLOM:Information Agglomerates oderable066.98.ntind.vidotron.net/207.253.98.66 getdbwns.pr.ncs.net/204.95.35.92 34 7 5 .215.85. p-207-21 -85-34.scrnO1.pacbell.net/20 3 92 5. gettbns.pr.n=s.net/204.95. getcbns.pr.ncs.net/204.95.35.92 34 7 .215.85. ppp-207-215-85-34.scrnOl.pacbell.net/20 rp009.sf.hac.net/208.154.136.41 getda1ns.pr.ncs.net/204.95.35.92 s22.netfox.net/208.222.213.22 client-151-198-132-13.bellatlantic.net/151.198.132.13 243 2 9 poo1043-nnx2.s13-ca-us.dialup.earthlink.net/ 0 .178.15. pr092.kiski.net/208.22.46.142 3 2 7 .<xmV24. . 2 .131 cx45836-a.coanl.n.lre 7 3 pool043-nex2.ds13-ca-us.dialup.earthlink.net/209.1 8.15.24 dip-01.nux-01.seeca.conline.net/206.101.113.101 dip-01.nox-01.seneca.csnline.net/206.101.113.101 7 43 pool043-nx2.ds13-ca-us.dialup.earthlink.net/209.1 8.15.2 prO92.kiski.net/208.22.46.142 dip-01.nox-01.secn.csonline.net/206.101.113.101 dip-O.nex-±01.smeca.csonline.net/206.101.113.101 slipl66-72-157-96.ca.us.ihn.net/166.72.157.96 3 .101 dip-01.nex-01.senca.csonline.net/206.101.11 pn092.kiski.net/208.22.46.142 dip-l.nux-01.ooeca.csonline.net/206.101.113.101 dip-01.nox-01.eneca.csonline.net/206.101.113.101 142.204.84.53/142.204.84.53 gp-206-170-2-83.sntc0l.pacbell.net/206.170.2.83 NEAL.uwsp.edu/143.236.55.208 sherwood-142.foothill.net/209.77.113.142 kirkOl-5.accessone.om/209.43.128.5 gplO8.brandywine.net/207.106.54.40 sc24.c.siue.eda/146.163.15.54 eb-pn1--27-59.dialup.slip.net/207.171.198.59 eb-pnl-27-59.dialup.slip.net/207.171.198.59 sc24.ac.siue.edu/146.163.15.54 gp108.brandywine.net/207.106.54.40 ts1-06.f1701.quebectel.cc/142.169.136.9 4 sc24.ac.siue.edu/146.163.15.5 pn3170.spectra.net/204.177.130.170 166-93-76-79.nTr.net/166.93.76.79 208.31.5.249/208.31.5.249 208.31.5.249/208.31.5.249 pc-4514.on.rogers.wave.ca/24.112.40.198 plO9b.rtn.mzt.edu/129.138.35.69 208.31.5.249/208.31.5.249 172-222-235.ipt.ol.cc/152.172.222.235 3 7 1.20.155 171-203-155.ipt.aol.c/152.1 208.31.5.249/208.31.5.249 171-203-155.ipt.aol.cc/152.171.203.155 ip23.cws-inc.ccV208.6.203.151 208.31.5.249/208.31.5.249 68.chattanooga-01.tn.dial-acces.att.net/12.69.76.68 208.31.5.249/208.31.5.249 ip23.cws-inc.<xn/208.6.203.151 202-36-248.ipt.aol.cn/152.202.36.248 208.31.5.249/208.31.5.249 208.31.5.249/208.31.5.249 208.31.5.249/208.31.5.249 206.153.71.83/206.153.71.83 202-36-248.ipt.ol.ccn/152.202.36.248 sa7-p43.dremscape.ccm/209.4.228.171 a7-p43.dremcape.ccn/209. 4 24. 228.171 7 22 7 travelsys.cnn/20 .1 . 5.2 97 3 .121. 6 client-151-197-121-36.bellatlantic.net/151.1 irvnetserver_11.ploenix.cc/134.122.60.61 clieit-151-197-121-36.bellatlantic.net/151.197.121.36 bradfordOl6-ResHalls.Mines.EI3/138.67.72.16 bradfordOl6-ResHalls.Mines.EIU/138.67.72.16 bradfordOl6-ResHalls.Mines.EDIJ/138.67.72.16 bradfordOl6-ResHalls.Mines.EIU/138.67.72.16 bradford016-ResHalls.Mines.EIU/138.67.72.16 t2-34.tznet.ccm/205.216.108.34 bradford016-ResHalls.Mines.EIlJ/138.67.72.16 2 3 7 1. 0 .155 171-203-155.ipt.aol.ccnV152.1 hlfx36-26.ns.synpatico.ca/142.177.29.95 t2-34.tznet.con205.216.108.34 1Cust221.tnt16.sfo3.da.uu.net/153.37.46.221 t2-34.tznet.ccu/205.216.108.34 208.230.216.250/208.230.216.250 125 id# date time scors duration baddise hits shots ip address of player 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 4:12:57 24 4:15:54 4:16:26 24 4:16:33 4:18:37 4:18:38 EM 4:23:03 2M 4:23:15 4:26:31 24 4:41:292M 4:46:172M 4:50:132M 4:55:072M 4:55:25 4:58:0424 4:59:4124 5:08:29 5:15:15 5:20:35 5:21:09m 5:26:57 5:29:48 5:32:26 5:33:552M 5:34:11 5:34:452M 5:34:572M 5:38:08 5:38:542M 5:39:432M 5:42:5724 5:43:4824 5:44:59 4 5:47:5424 5:52:2324 5:55:422M 6:55:462M 6:55:482M 6:55:48 6:55:4924 6:55:4924 6:55:502M 6:55:512M 6:55:512M 6:55:522M 6:55:522M 6:55:5324 6:55:542M 6:55:542M 6:55:552M 6:55:562M 6:55:5624 6:58:442M 7:00:352M 7:00:562M 7:01:5924 7:04:11 7:05:0624 7:13:2524 7:20:262M 7:21:12 4 7:21:372M 7:26:2424 7:28:212M 7:29:502M 7:52:31PM 7:54:132M 7:56:16 4 7:57:19 2M 8:22:12 8:34:2224 8:43:17 8:56:11 4 8:59:50 9:11:072M 9:17:232M 9:19:362M 9:21:352M 9:22:27 4 9:23:48 4 9:24:252M 9:25:56 24 9:28:16 9:31:19 4 9:34:352M 9:36:0324 9:36:57 9:38:16 2M 9:44:452M 9:45:02 9:48:36 9:54:462M 9:57:57 2M 9:58:312M 10:01:112M 10:07:482M 10:11:344 10:12:4024 10:13:444 10:17:13 10:17:2324 10:27:09 10:28:59 10:29:10 12650 2150 3250 500 2650 6150 2500 650 11100 4000 7550 6350 8350 2450 2400 1800 2650 3750 350 3800 3750 5200 0 1200 3250 4800 3500 5850 3600 4300 3350 4600 800 2950 2950 4600 4750 3700 7900 4800 700 9400 4700 2750 9650 2450 4750 4700 3000 3650 2050 6950 3950 0 5550 6650 5550 6600 2950 6050 1800 9300 7700 11400 9050 700 11500 3950 2150 0 1750 200 5450 400 5250 4950 8700 5450 2350 900 1450 8600 7550 6300 7550 450 0 0 12500 0 1800 4350 6000 3350 11550 11650 3400 6600 3150 4200 4750 10750 1500 1450 569 236 201 31 148 324 144 67 423 171 271 220 276 367 137 166 94 315 85 163 332 152 40 74 245 149 86 181 267 333 159 279 84 223 96 181 195 157 501 114 41 366 250 202 302 120 267 536 178 304 146 201 203 53 234 217 294 171 190 403 110 381 296 371 191 324 314 108 261 4 111 83 425 65 247 459 266 167 37 64 23 493 463 272 248 242 38 64 748 391 66 157 211 131 370 535 80 333 110 488 263 567 88 65 25 4 12 2 5 16 4 1 29 10 13 11 18 4 4 3 5 7 1 8 8 12 0 2 6 10 14 16 8 11 5 12 1 10 6 10 13 9 19 11 1 21 11 6 17 4 11 12 11 13 3 18 9 0 12 18 20 19 6 18 3 28 21 32 19 1 29 10 3 0 7 0 12 0 10 17 25 19 8 3 5 33 20 18 17 1 0 0 40 0 3 16 23 5 30 43 6 15 7 9 16 20 6 5 359 26 133 44 35 90 26 9 228 66 133 137 182 57 27 19 36 46 9 53 61 78 13 18 43 61 115 88 72 108 48 95 10 106 37 57 111 89 191 83 14 241 65 67 232 34 68 162 99 141 24 196 123 0 87 166 162 171 38 118 23 185 167 310 218 19 286 140 29 0 75 4 88 13 118 132 164 165 109 86 75 240 167 153 161 28 6 9 233 24 18 149 163 39 278 292 53 154 90 58 151 290 72 62 964 62 388 52 113 779 91 44 927 156 361 258 450 459 155 76 102 196 37 146 264 200 59 89 119 274 247 344 197 456 256 340 72 428 219 791 495 309 1068 206 66 718 593 163 433 102 387 1011 285 1670 124 615 968 0 238 970 531 863 63 607 49 1435 578 1342 536 60 1220 422 57 0 208 12 223 67 366 544 521 864 218 391 160 1235 799 727 520 232 26 48 692 182 72 509 327 110 1501 1871 78 366 253 313 394 672 172 109 3155 t2-34.tmet.o/205.216.108.34 3156 spm13-lardtx.ICSI.Net/199.1.102.131 3157 141.85.134.3/141.85.134.3 3158 node29.nophersonx2.mida.net/208.137.165.29 2 3159 .131 3160 t2-34.tznet.ccmV205.216.108.34 3161 1Cust43.nex7.cleveland.oh.no.uu.net/153.35.127.171 8 9 3162 .1 6.56.109 oaturn-109.internet-frotir.net/20 3 3163 4 t2-34.tznet.can/205.216.108. 4 3164 1Cust26.nex43.chicago.il.no.uu.net/153.35.119.15 3165 1Cust26.onx43.chicag.il.ne.uu.net/153.35.119.154 3166 1Cust26.nax43.chicago.il.neuu.net/153.35.119.154 3167 1Cust26.nex43.chicago.il.no.uu.net/153.35.119.154 3168 dynamoic9.buf.adelphia.net/24.48.32.9 3169 dynmc9.buf.adelphia.net/24.48.32.9 7 36 3170 kngga3-19.gate.net/20 9 . 24.2.82 42 3171 .1. .1 chal2.ramlink.net/19 3172 206.81.150.102/206.81.150.102 3173 38.186.109.18/38.186.109.18 3174 C P154-224.SplitRock.net/209.156.154.224 Kansascity 3175 KansasCityKCDP154-224.SplitRock.net/209.156.154.224 3176 KansascityICDP154-224. SplitRock.net/209.156.154.224 3177 ho.cn/24.1.166.211 cx64525-a.alsv1.occa.8 3178 cx64525-a.alsvl.occa.hcne.caV24.1.166.211 3179 KansasCityKCDP154-224.SplitRock.net/209.156.154.224 3180 ci85061-a.nashl.tn.xmre.cn/24.2.97.219 3181 epc-isp-wpg-uas-05-17.sprint.ca/209.103.40.68 3182 ci85061-a.nashl.tn.hcoe.can/24.2.97.219 4 2 4 6 3183 .15 . 2 Kma9nsCityIP154-224.SplitRock.net/209.15 3184 cx64525-a.all.occa.rme.ocan/24.1.166.211 3185 cx64525-a.alsvl.occa.hcne.caV24.1.166.211 3186 KansasCityKCDP154-224.SplitRock.net/209.156.154.224 3187 c64525-a.alvl. occa.hcae.ccrv24.1.166.211 4 3188 KnsaoCity4P154-224.SplitPock.net/209.156.154.22 00 3189 .182 tc2-52.utah-inter.net/208.14.2 3190 tc2-52.utah-inter.net/208.14.200.182 3191 ocal-pr2-04.mfi.net/205.161.238.51 4 8 34 3192 .26.1 .18 d01oa6b8.dip.cdsnet.net/20 3193 bay6-2.dial.umd.edu/128.8.23.66 3194 d01o86b8.dip.cdsnet.net/208.26.134.184 3195 d01oa86b8.dip.cdsnet.net/208.26.134.184 3196 t3-125.tznet.ccan/205.216.108.125 3197 t3-125.tznet.can/205.216.108.125 7 3 7 3196 .21 .22.100 pool050-nxl2.ds6-ca-us.dialup.earthlink.net/20 6 8 3199 .10 .l25 t3-125.tznet.can/205.21 6 3 3200 .2 9.151 lgdtppl5l.eoni.can/0192.21 7 232 7 3201 .100 pol050-nx12.ds6-ca-us.dialup.earthlink.net/20 .21 . 3202 client-207-68-63-65.bellatlantic.net/207.68.63.65 39 3203 .151 1gdgp±151.eoni.caW192.216.2 3204 pol050-naxl2.ds6-ca-us.dialup.earthlink.net/207.217.232.100 3205 guyas52004al.ptsi.net/207.50.2.132 3206 tntO-080115.k.sound.net/209.153.80.115 3207 130.160.36.85/130.160.36.85 3208 cet1.cray.can/137.38.96.10 3209 guyas52004al.ptsi.net/207.50.2.132 3210 tntO-080115.kc.sound.net/209.153.80.115 3211 pn-14.ili.net/206.250.201.38 9 3 8 3212 .157. 0.115 tntO-080115.ke.ound.net/20 46 3213 201-170-46.ipt.ol.co/152.201.1 7 0. 3214 0.46 201-170-46.ipt.ol.can/152.201.1 77 3 3215 .25 1Cust253.tnt1.orll.da.uu.net/208.250. 7 3216 07 203-51-170.ipt.aol.cano/152.203.51.1 3217 7.253 1Cut253.tnt.orl.da.uu.net/208.250. 3218 203-51-170.ipt.aol.cn/152.203.51.170 3219 lCust253.tntl.or11.da.uu.net/208.250.77.253 3220 ostbllO.capecod.net/208.204.67.110 3221 sa3-p34.dreamscape.can/207.198.19.98 3222 sa3-p34.dreamscape.can/207.198.19.98 3223 ostbllO.capecod.net/208.204.67.110 3224 cc1004774-a.1vxnml.pa.1xue.ca/24.3.108.110 6 3225 tns02046.singnet.can.sg/165.21.204.23 3226 1Cusstll9.tnt24.sfo3.da.uu.net/208.255.67.119 7 3227 .69.224.51 us-37kbo1j.dialup.mindspring.cam20 36 3228 .228 hnte.panedics.can/207.203.1 3229 205-123-176.ipt.aol.cn/152.205.123.176 3230 1Cust193.tnt3.beavertan.or.da.uu.net/153.35.224.193 3231 p89.p.wr.ic.net/l52.l60.l7.92 7 2 3 98 6 6 3232 mnoecableO66.98.timi.videotran.net/20 . 5 . . 3233 nodmicableO66.98.ntii.videotran.net/207.253.98.66 3234 mndaable066.98.ntini.videotron.net/207.253.98.66 3235 nodacable066.98.ntimi.videotran.net/207.253.98.66 93 3236 1Custl93.tnt3.baverton.or.da.uu.net/153.35.224.1 3237 194.binminghO-01.al.dial-access.att.net/12.67.64.194 9 3238 3 1Cust193.tnt3.beaverton.or.da.uu.net/153.35.224.1 6 9 3239 .5 ip226-59.cc.interlog.can/207.34.22 93 3240 1Cust193.tnt3.beaertn d..a.net/153.35.224.1 3241 1Cust193.tnt3.beaerton.or.da.uunet/153.35.224.193 93 3 3 2 4 3242 . 5. 2 .1 1Cut193.tnt3.bevertn.or.da.uu.net/15 3243 oak-port34.jps.net/209.142.28.41 3244 1Cust193.tnt3.beaerton.or.dak.uu.net/153.35.224.193 3245 128.100.46.51/128.100.46.51 37 3 3246 .6 sil-wa2-04.ix.netcan.can/206.214.1 3247 line14.vernonia.can/206.58.139.145 3248 204.244.96.78/204.244.96.78 37 36 3249 . sil-wa2-04.ix.netcan.can/206.214.1 3250 linel4.vernonia.can/206.58.139.145 7 6 9 3251 0. .2 29.orlando-07.fl.dilal-acess.att.net/12. 3252 dialup4.pn2.caerns.can/206.206.164.25 7 6 29 3253 0. . 29.orlanc&-07.fl.dial-acess.att.net/12. 3254 dyn72ppp169.pacific.net.sg/210.24.72.169 4 3255 .25 dialup4.pn2.caverns.om/206.206.16 64 6 2 3256 .25 dialup4.pa2.caverns.an/20 . 706.1 7 4 3257 vchase1port10.hileot.can/20 . 1.2. 6 3258 pppa163.oke.nstar.net/209.131.174.163 M M M M M M M M M M M M M M M M M M M M M M M M M M GLOM:Information Agglomerates pp131-lardtx.ICSI.Net/199.1.10 126 date 980503 980503 980503 980503 980503 980503 980503 980503 980503 980503 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 tim 10:30:53 R4 10:33:19 10:34:48 24 10:36:05 10:36:092M 10:48:30PM 11:11:232M 11:15:24PM 11:26:01R4 11:45:2624 12:08:18AM 12:41:17 12:43:11AM 1:46:36AM 3:52:13AM 3:58:49 AM 6:07:36AM 7:25:16AM 7:39:58AM 7:52:33AM 8:21:070M 8:22:35A14 8:41:480M 8:43:09 8:45:19004 8:45:270M 8:51:08004 9:11:12AN 9:22:310M 9:34:460M 9:42:150M 9:44:180M 9:46:590M 9:47:000M 9:47:150M 9:52:28AM 9:55:29A04 0M 10:02:13 10:04:35M 10:23:58 AM 10:28:38 AM 10:33:20 008 10:35:58004 10:40:34004 AM 11:00:04 11:05:43004 11:07:220M 11:16:44AM 11:18:290M 12:07:52 12:13:55 12:21:082M 12:51:542M 12:55:422M 12:56:172M 12:57:582M 1:12:212M 1:14:332M 1:15:482M 1:18:202M 1:18:51R4 1:20:452M 1:25:172M 1:38:132M 1:57:1424 2:31:11FM 2:31:14FM 2:39:442M 2:40:082M 2:42:5524 2:50:3924 3:22:27 3:24:502M 3:25:0824 3:27:43 3:42:33 3:46:0524 3:49:212M 3:54:022M 4:06:12 4:09:312M 4:17:50M 4:22:3224 4:25:322M 4:28:3924 4:29:022M 4:30:362M 4:35:48 4:39:0124 4:39:422M 4:39:5524 4:40:092M 4:41:27FM 4:43:1324 4:48:512M 4:51:1424 4:51:27 4:52:382M 4:54:302M 4:55:352M 4:57:0924 4:58:5024 5:00:212M 5:02:492M M M M M M M M M M M M M id# scors duration baddias hits shots ip address of player 2300 5000 500 1400 200 4900 2550 7500 8350 6600 4350 3200 4000 5300 7300 6600 3450 11000 0 0 700 2400 0 1300 1950 1850 7400 0 3700 0 8400 3350 7650 2450 0 20550 5000 9150 4100 4000 3400 0 1550 2650 650 1400 4300 0 0 8600 6500 0 4000 0 6600 4150 6450 1400 1250 2350 0 3500 3500 300 5650 50 0 0 4100 4350 800 8350 4600 3550 4450 1800 800 1250 10100 4100 2900 4650 7950 7050 6850 7550 3000 1800 3750 2200 13750 2550 3200 7500 4850 3650 12450 850 150 9000 0 6200 7150 4000 97 355 52 551 65 162 109 290 242 333 171 132 104 394 438 300 82 451 7 62 49 73 92 88 66 111 402 45 214 25 349 111 353 40 4 296 234 386 124 171 154 40 142 398 102 98 247 697 1 230 628 128 145 27 154 121 325 116 61 137 15 100 80 118 363 117 54 119 161 156 62 208 106 154 662 77 79 88 358 169 258 146 202 164 169 386 100 32 177 149 638 163 89 237 213 309 674 59 103 388 30 241 269 83 9 11 1 4 0 14 6 24 25 16 10 5 10 21 23 18 6 38 0 0 2 8 0 3 7 4 24 0 9 0 21 7 19 9 0 37 14 22 8 16 8 0 6 5 2 3 11 0 0 19 13 0 8 0 18 9 20 4 4 7 0 13 11 1 22 0 0 0 9 16 1 18 10 8 8 3 2 5 23 9 6 10 17 14 12 21 5 6 8 6 39 4 5 23 11 9 35 2 0 20 0 16 12 7 93 64 10 84 10 94 75 189 158 104 68 43 85 163 159 150 48 245 0 0 19 80 1 31 94 69 192 0 67 6 240 79 178 105 0 662 110 185 46 114 84 0 61 29 47 40 129 0 0 166 142 0 54 20 162 79 173 96 61 109 18 121 127 7 167 9 0 0 53 135 10 162 88 65 172 28 35 64 189 55 37 64 220 188 116 165 45 53 55 53 300 30 34 154 67 52 308 11 16 171 0 122 133 73 318 372 36 277 29 376 182 1078 914 311 375 254 210 1311 343 296 119 1065 1 0 42 197 4 140 206 277 1053 0 385 14 759 202 497 149 0 1102 290 504 177 302 350 0 123 251 125 115 522 0 0 604 565 34 346 23 532 411 826 242 141 301 49 348 302 32 853 55 0 5 163 540 30 418 237 186 397 70 86 103 529 242 98 143 609 408 306 867 165 186 749 91 1608 55 65 1450 226 294 1051 42 73 454 0 336 215 116 3259 vchaselportlO.hilcont.om/20 . 1.2. 3260 dialup4.pn2.caverns.can/206.206.164.25 3261 209.210.180.13/209.210.180.13 3262 1c091.zianet.cVn204.134.124.191 3263 209.210.180.13/209.210.180.13 2 6 7 3 88 3264 . . .1 188.dallas-10.tx.dial-access.att.net/1 3265 coltrane-a-asy-16.rutgers.edu/165.230.208.84 3266 131.denver-18-19rs.co.dial-access.att.net/12.74.79.131 2 7 4 79 3267 . . .131 131.de r-18-19rs.co.dial-access.att.net/1 3268 a16-41.itis.co-V209.83.14.233 3269 ts233.ver.wis.net/204.191.170.233 3270 58.seattle-08.wa.dial-access.att.net/12.65.80.58 2 6 8 3271 . 5. 0.58 58.seattle-08.wa.dial-access.att.net/1 3272 203.35.209.212/203.35.209.212 3273 209.58.12.189/209.58.12.189 3274 209.58.12.189/209.58.12.189 3275 194.168.203.189/194.168.203.189 67 37 3276 net.au/202.1 . .150 nodan31-syd-isp-10.ne. 3277 sfo-ca5-18.ix.netcan.caV199.35.210.178 3278 207.87.132.10/207.87.132.10 3279 cxjcave-3-15.cgocable.net/24.226.3.15 3280 cgave-3-15.cgocable.net/24.226.3.15 4 94 3281 0. lvl-nuc079.usc.edu/128.125.1 3282 1vl-nmc079.usc.edu/128.125.140.94 3283 lvl-nc079.usc.edu/128.125.140.94 4 94 3284 0. lvl-nc079.usc.du/128.125.1 3285 nesx-09-2-11.1033.cybervity.dk/195.8.139.172 3286 rotc8.rotc.ntu.edlu/141.219.41.148 3287 rotc8.rotc.ntu.edu/141.219.41.148 3288 206.26.220.6/206.26.220.6 3289 inkling.cba.uga.edu/128.192.100.227 2 7 3290 2 3 inkling.cba.uga.edu/128.192.100. 3291 5 pulaski-2-12.netnet.net/206.40.105. 3292 inkling.cba.uga.edu/128.192.100.227 3293 pulaski-2-12.netnet.net/206.40.105.35 7 0 3294 0.22 inkling.cba.uga.edu/128.192.1 3295 pulaski-2-12.netnet.net/206.40.105.35 3 6 4 3296 . 0.105.5 pulaski-2-12.netnet.net/20 3297 pulaki-2-12.netnet.net/206.40.105.35 3298 host-209-215-184-27.c1t.bellsouth.net/209.215.184.27 3299 host-209-215-184-27.clt.bellsouth.net/209.215.184.27 3300 odec1.ar1.mil/128.63.56.81 3301 odepc1.arl.mil/128.63.56.81 3302 209.174.249.15/209.174.249.15 7 3303 8.168.101 robert.nic-inc.cm±/207. 3304 207.74.186.132/207.74.186.132 3305 gbe.ne.nediaone.net/24.128.3.917 3306 .92 lCust92.tnt1.chi2.da.uu.net/208.250.11 3307 207.240.172.237/207.240.172.237 4 7 3308 .5 du75.wb.ptd.net/204.186.1 3309 ts29111.pathccm.cam/209.112.18.62 3310 160.7.64.192/160.7.64.192 3311 Ectnosion-131B.CSS.CSr.EIU/128.193.102.154 3312 t2o39p9.telia.cm/o195.198.43.69 3313 Extension-131B.CSS.CPSr.E[U/128.193.102.154 3314 t2o39p9.telia.cm/195.198.43.69 3315 199.176.126.236/199.176.126.236 3316 199.176.126.236/199.176.126.236 3317 199.176.126.236/199.176.126.236 3318 199.176.126.236/199.176.126.236 3319 199.176.126.236/199.176.126.236 3320 199.176.126.236/199.176.126.236 3321 199.176.126.236/199.176.126.236 3322 164.116.208.135/164.116.208.135 3323 lCust95.tnt3.det3.da.uu.net/208.254.241.95 3324 209.12.85.104/209.12.85.104 3325 209.12.85.106/209.12.85.106 3326 64 37 7 6 3327 g2-p5.hamilton.wochat.on.ca/20 7 . 1.1 . 7 3328 .61.164.3 g2-p5.hamilton.wchat.on.ca/20 3329 149.127.130.115/149.127.130.115 3330 han96-105.hil.ccupuserve.cm/209.154.58.105 3331 hdn96-105.hil.copuserve.ccm/209.154.58.105 3332 us030.rdyne.hn aboeing.cPV134.57.58.141 3333 1Custl8O.tntO10.bos2.da.u.net/208.254.152.180 3334 195.64.37.42/195.64.37.42 3335 204.244.239.36/204.244.239.36 8 222 68 3336 .1 0. }ost-222.inter-tel.ccn/192. 3337 pulaski-5-2.netnet.net/206.40.105.88 3338 pulaski-5-2.netnet.net/206.40.105.88 3 3339 1Cust2.nex35.cleveland.oh.m.uu.net/153. 5.141.130 3340 rpp645.pdn.net/207.226.201.145 3 3341 5 35.new-york-27.ny.dial-access.att.net/12.68.134. 3342 35.new-york-27.ny.dial-access.att.net/12.68.134.35 3343 35.new-york-27.niy.dial-access.att.net/12.68.134.35 3344 172-193-29.ipt.aol.ccn/152.172.193.29 3345 s.att.net/12.68.134.35 35.new-york-27.ny.1ial-acso 3346 1Cust10.nex2.neyork.ny.ne.uu.net/153.35.0.138 3347 1Cust10.nnx2.new-york.ny.n.uu.net/153.35.0.138 8 96 32 3348 .1 . .105 hag3.info xc.ca/20 3349 172-193-29.ipt.aol.cc/152.172.193.29 3350 198.76.226.137/198.76.226.137 3351 hag3.infoccm.ccn/208.196.32.105 38 3352 1CustlO.nex2.new-york.ny.ms.uu.net/153.35.0.1 3353 hag3.infoocm.ccV/208.196.32.105 3354 198.30.208.65/198.30.208.65 7 2 93 2 9 3355 .1 . 172-193-29.ipt.aol.±on/152.1 3356 198.30.208.65/198.30.208.65 3357 ipP3158.qc.bellglobal.com/206.172.222.86 3358 hag3.infoccm.ccn208.196.32.105 3359 c00980-247dan.eos.ncsu.edku/152.1.21.80 9 7 64 3360 . .15 159.birminghoa-01.al.dial-access.att.net/12.6 3361 cV/208.196.32.105 hag3. infocom. 3362 206.144.90.176/206.144.90.176 GLOM:Information Agglomerates 7 7 46 apool270.sbceo.k12.ca.us/204.48.133.70 127 date 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980504 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 time 5:04:57 2M 5:06:28 2M 5:07:42PM 5:09:14PM 5:11:21 5:11:222M 5:11:340M 5:13:56PM 5:13:582M 5:14:20PM 5:16:28EM 5:17:32 5:20:442M 5:20:582M 5:22:45 5:26:05 5:27:17 5:50:07 5:51:14 5:52:41 5:54:15 5:58:58 5:59:28 6:01:18 6:08:232M 6:10:0424 6:30:312M 6:46:5424 6:48:1924 6:55:352M 6:56:202M 6:57:57 4 7:14:062M 7:25:472M 7:29:20 7:29:362M 7:29:55 7:32:21 7:36:54R4 7:38:33 7:41:13 7:43:0124 7:43:322M 7:44:522M 7:46:142M 7:47:082M 7:49:082M 7:52:392M 7:54:32FM 7:58:582M 7:59:222M 8:01:472M 8:03:33 8:04:132M 8:28:462M 8:32:162M 8:43:342M 8:52:20 9:21:042M 9:23:592M 9:26:502M 9:29:092M 9:32:052M 9:42:272M 9:50:44 9:52:042M 10:02:082M 10:11:08 EM 10:26:072M 10:31:052M 10:50:14 10:52:2924 10:56:56 R4 10:59:47 11:08:03 11:14:43 11:34:4624 EM 11:55:09 11:59:352M A14 12:04:36 12:21:54M 12:26:45M 12:28:390M 12:34:11 2 12:49:24M 1:17:52M 1:20:45 1:29:17M 4:01:08M 4:44:26M 4:46:48M 4:50:27 5:37:47M 5:40:59 6:06:21M 6:17:54M 6:21:16M 6:25:27M 6:39:20M 7:20:23M 7:49:21M 7:51:55M 8:07:01M 9:18:21M M M M M M M M M M M M M M M M M M M M M M M M M MA MA MA score 8000 0 10000 7700 800 2550 0 950 0 1300 0 8550 1100 0 2000 10650 1750 2700 1900 1950 2450 3350 5100 4100 750 750 2500 11700 0 5000 900 1700 20200 3550 3000 1750 3950 6350 2500 14150 3150 8850 3850 3200 7900 4650 7100 5100 4000 10600 2300 4350 650 5150 5250 4150 4400 0 4150 3450 2750 2400 3200 22200 1300 10000 0 36050 0 3300 1100 1450 4400 4850 5350 10250 4300 2950 4900 9050 2900 7050 7300 3350 400 1850 4400 11000 8600 3900 3800 4000 7750 3850 3400 3500 5600 8150 9150 8300 6050 4750 2500 3500 duration 252 8 282 224 23 204 4 215 80 227 307 312 113 4 92 869 56 125 51 72 74 212 174 123 130 92 210 761 96 207 66 77 265 225 63 184 229 141 137 358 205 253 157 207 178 200 159 195 98 693 226 131 87 188 146 516 177 62 179 343 157 123 162 741 77 566 11 1126 72 162 90 118 249 154 247 384 374 149 169 284 221 276 387 238 82 109 159 496 178 166 125 190 524 174 140 187 187 235 236 228 213 139 93 120 GLOM:Information Agglomerates baddies 16 0 23 15 1 4 0 3 0 4 0 27 3 0 8 27 5 10 7 4 4 9 11 8 1 3 6 29 0 13 3 6 29 7 12 7 7 11 4 26 7 20 7 7 16 11 18 13 9 36 6 9 1 11 14 9 9 0 8 8 5 4 5 73 2 24 0 106 0 7 2 3 17 11 13 20 12 6 11 18 6 28 18 7 1 7 9 22 15 10 9 9 24 11 8 8 16 20 24 17 17 13 4 7 hits 136 0 220 125 10 29 0 50 0 82 0 188 51 0 74 208 81 122 106 27 26 89 68 92 26 33 67 252 0 87 47 87 345 49 101 58 59 188 43 397 52 213 47 48 173 69 175 129 101 256 54 51 15 109 110 53 55 0 66 47 31 25 34 491 21 288 0 971 0 77 45 17 156 139 95 303 130 36 63 162 101 192 140 59 47 72 53 320 279 61 80 55 165 76 75 46 120 201 186 185 112 106 26 40 shots 307 0 660 230 26 108 0 98 2 241 7 534 196 4 468 1991 194 465 232 186 213 433 388 234 48 92 158 1147 8 437 118 280 600 211 327 98 175 346 93 1272 251 974 129 326 524 259 671 1064 267 1551 251 290 30 469 313 373 138 7 117 642 167 135 244 3959 46 1451 1 5092 0 392 117 217 792 322 267 545 358 131 304 453 636 655 497 275 145 142 408 1005 481 234 225 236 1065 784 153 371 557 765 729 660 493 381 257 98 id# ip address of player 3363 hag3.inf±oan.can/208.196.32.105 3364 pp15.loflink.amn/199.173.65.115 3365 206.144.90.176/206.144.90.176 3366 hag3.inflo.cV208.196.32.105 3367 nat-soc-248-1.tdbank.ca/142.205.248.1 3368 198.76.242.183/198.76.242.183 3369 198.76.242.183/198.76.242.183 3370 198.243.102.142/198.243.102.142 3371 207.221.223.193/207.221.223.193 usr32-dialup23.mixl.WilloSprings.ni.net/166.55.42.215 3372 3373 208.214.94.67/208.214.94.67 38 24 4 2 9 3374 . .1 ntro-244pgp219.epix.net/205.2 3375 198.76.242.187/198.76.242.187 3376 198.76.242.187/198.76.242.187 3377 198.76.242.187/198.76.242.187 3378 nat-soc-248-1.tdbank.ca/142.205.248.1 3379 nat-oc-248-1.tdbank.ca/142.205.248.1 6 3380 derable066.98.ntimi.videotron.net/207.253.98. 6 3381 nodmrable066.98.ntimi.videotron.net/207.253.98.66 3382 nodacable066.98.ntimi.videotron.net/207.253.98.66 3383 nodeable066.98.ntimi.videotron.net/207.253.98.66 3384 PS41.RESNEr.CRNELL.EI/128.253.136.43 3385 lCust44.tnt1.stl1.da.uu.net/153.34.192.44 3386 PS41.RESNE0TJEL.EIIJ/128.253.136.43 3387 198.76.216.127/198.76.216.127 3388 198.76.216.127/198.76.216.127 3389 pn202.newulntel.net/206.10.54.131 3390 2Custll.tnt3.ne--port-richey.fl.gt.uu.net/208.255.195.139 7 3391 F101-7.cc.berkshire.org/208.200.68.10 3392 206.144.90.176/206.144.90.176 3393 192.san-juan-01.pr.dial-acces.att.net/12.70.52.192 7 2 92 3394 0.5 .1 192.s a-jua-O01.pr.dial-accss.att.net/12. 3395 ci85061-a.nashl.tn.hcue.cca/24.2.97.219 0 67 8 38 3396 .2 .20 . dialinl403c.carol.net/20 6 3397 r.net/207.253.98.6 ondecableO66.98.ntii.vidot 3398 p224-20.atlas.co.uk/195.54.224.20 0 67 3399 0. dialinl403c.carol.net/208.238.2 3400 ndecable066.98.nitimi. vidotron.net/207.253.98.66 3401 rice-b-04.altoona.nb.net/209.161.76.196 3402 nodorable066.98.nt±ii.videotron.net/207.253.98.66 3403 d01a80oe7.dip.cdsnet.net/208.26.128.231 3404 nodsakble066.98.ntimi.vidootron.net/207.253.98.66 3405 nodm61.trun.edlu/150.243.190.51 8 3 3406 .21 d01a80e7.dip.cdsnet.net/208.26.12 3407 =ndmcable066.98.ntimi.videotron.net/207.253.98.66 3408 nodem51.trun.edu/150.243.190.51 66 3409 nndecable066.98.ntii.vidotron.net/207.253.98. 3410 odeacable066.98. nt-ii.videotron.net/207.253.98.66 6 7 3411 .253.98.6 ndmcable066.98.nitimi.vidotron.net/20 9 3412 0.516 nd6l.trumn.edu/150.243.1 3413 stn-onl-22.netcan.ca/207.181.100.8 3414 st l-22.netcrn.ca/207.181.100.86 3415 stn-on1-22.netcn.ca/207.181.100.86 39 3416 s152.coolink.net/199.190.82.2 3417 haddona26.snip.net/208.211.70.26 3418 204.229.212.92/204.229.212.92 3419 patron.library.ci.nrnview.ca.us/207.201.60.22 207-172-245-190.s63.all.nrf.erols.canV207.172.245.190 3420 3421 dt031n70.neine.rr.canV204.210.85.112 3 3 6 9 23 6 3422 . . 4. 1Cust236.tntl5.atl2.da.uu.net/15 3423 1Cust236.tntl5.at2.da.uu.net/153.36.94.236 3 3 6 94 23 6 3424 . . . 6 1Cust236.tnt15.atl2.da.uu.net/15 3425 1Cust236.tntl5.at2.da.uu.net/153.36.94.23 3 3 3426 .146 gra-il0-15.ix.netcan.can/207.220.13 3427 15.san-jose-03.ca.dial-access.att.net/12. 3 4.105.15 3 3428 3.14 gra-mil0-15.ix.netcan.can/207.220.1 8 3429 kr-205-38.gou.edu/129.1.205.3 3 3430 gra-milO-15.ix.netcan.om/207.220.133.14 3431 pgp-208-15-147-241.tulook.swbell.net/208.15.147.241 3432 bvi7-245.d2ialup.acossus.net/207.206.141.245 3433 sfdn9-054.sf.acapuserve.cam/206.175.228.54 4 3434 sfdn9-054.sf. carpsrve.cnV206.175.228.5 3435 sfdn9-054.sf.corpuerve.canm/206.175.228.54 3436 sfdn9-054.sf.carpuserve.cao/206.175.228.54 3437 199.106.87.109/199.106.87.109 3438 199.106.87.109/199.106.87.109 3439 portal4-ppp-005.ingina.canV206.163.82.104 9 29 2 2 3440 .1 . 5 169-129-252.ipt.ol.on/v152.16 3441 199.106.87.109/199.106.87.109 3442 199.106.87.109/199.106.87.109 9 8 7 3443 6 1r908-n6.pgp.tErple.edu/155.24 2 2 9. 8 6 24 7 .22 3444 . . lr908-r6.ppp.terple.edu/155. 3445 1Cust223.tnt1.indio.ca.da.uu.net/153.34.180.223 3446 ip83.vanll.pacifier.can/206.163.57.83 3447 cvip-nod3-psp30.csufresno.edu/129.8.212.150 3448 137.132.189.176/137.132.189.176 3449 137.132.189.176/137.132.189.176 3450 137.132.189.176/137.132.189.176 7 3451 .110 d45-tsO5.anug.org/198.182.12 3452 sclOO.softnet.se/192.176.122.100 3453 sclOO.softnet.se/192.176.122.100 3454 sc100.softnet.se/192.176.122.100 3455 sclOO.softnet.se/192.176.122.100 3456 sclOO.softnet.se/192.176.122.100 3457 pg05.mic.ul.ie/136.201.110.183 83 36 2 3458 pg05.mic.ul.ie/1 . 01.110.1 3459 pg05.mic.ul.ie/136.201.110.183 83 3460 pg05.mic.ul.ie/136.201.110.1 83 3461 pgO5.mic.ul.ie/136.201.110.1 3462 pg05.mic.ul.ie/136.201.110.183 3463 194.18.60.179/194.18.60.179 3464 194.18.60.179/194.18.60.179 3465 209.21.199.3/209.21.199.3 3466 pn24-3.inage.dk/194.234.169.195 128 date time score duration baddies hits shots ip address of player id# 980505 980505 980505 9:23:44 AM 10:01:52 AM 10:08:13AM 8100 0 1200 308 20 95 17 0 2 170 8 19 399 13 120 pn24-3.inage.dk/194.234.169.195 dlls-94ppp65.epix.net/199.224.94.65 dynamic1.poD2.pleasanton.best.m/204.156.131.65 3467 3468 3469 980505 10:20:49AM 0 72 0 2 3 209.45.210.189/209.45.210.189 3470 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 10:26:20AM 10:27:37AM 10:35:20AM 10:37:35 AM AM 10:48:10 AM 11:02:59 11:22:02 AM 11:29:16 AM AM 11:31:47 11:42:54 AM 11:43:16 AM AM 11:49:02 11:54:05 AM 11:54:43 AM AM 11:57:55 12:04:39 2M 12:21:4224 12:42:372M 12:44:412M 12:44:44FM 12:55:142M 1:10:23EM 1:13:40 1:23:12 4 2:16:12 24 2:49:0724 2:54:16 4 2:57:02 3:24:45 3:27:59 3:29:032M 3:31:4024 3:47:232M 3:55:3524 4:04:5724 4:07:242M 4:07:332M 4:08:402M 4:10:14 2M 4:13:532M 4:19:222M 4:20:322M 4:25:44 4 4:25:4524 4:29:5524 4:38:21R4 4:41:4524 4:44:1824 4:49:45 4:49:57 4:52:25 4:52:54 4:53:572M 4:57:092M 5:00:582M 5:04:142M 5:06:412M 5:06:462M 5:11:202M 5:24:10 5:29:01 5:31:3724 5:33:5624 5:39:4624 5:40:2524 5:46:0124 5:46:16 4 5:54:5224 6:10:1824 6:11:2324 6:13:4024 6:16:0224 6:17:46 6:19:16 2M 6:20:042M 6:20:452M 6:27:012M 6:32:442M 6:38:2524 6:56:252M 7:05:332M 7:05:592M 7:16:142M 7:18:2524 7:22:4424 7:23:462M 7:25:422M 7:28:1424 7:29:532M 7:31:45PM 7:32:462M 7:34:37 7:34:58 7:38:05 7:43:34 7:53:5724 8:05:112M 8:09:282M 8:11:10 8:12:422M 0 0 400 5600 0 0 4250 4350 7950 7100 2650 8000 3000 5450 1700 0 0 2500 6150 4100 3650 2850 3550 0 0 2300 1450 3300 4150 6300 1750 5600 4900 10600 5050 3800 0 1750 2200 7650 250 11400 0 2350 2300 600 4250 3450 7850 9100 6650 25050 3850 7250 5150 7450 5000 4250 4700 6100 22050 10950 1400 7850 4750 6850 0 8000 1600 1200 3700 3750 1850 850 1050 2900 3150 3800 14750 50 2300 600 850 1350 4700 7400 7500 4600 2500 3850 1650 6300 5750 1800 100 5050 10450 2650 2300 3100 21 47 64 111 126 3 253 112 136 235 2710 253 507 326 214 61 20 68 268 104 140 418 113 38 119 198 114 151 156 179 48 141 239 473 288 130 1 101 85 373 101 311 74 517 232 76 349 132 257 341 146 858 76 173 468 210 106 137 259 363 1662 429 103 207 372 316 4 304 112 48 123 123 87 85 32 166 139 232 416 189 189 141 193 123 158 301 212 136 83 95 94 157 116 95 75 402 621 219 87 76 0 0 0 14 0 0 10 9 15 13 5 15 5 12 6 0 0 6 12 8 10 8 8 0 0 6 3 11 11 15 7 9 11 27 10 8 0 5 6 16 0 26 0 5 5 2 7 8 16 21 14 94 6 15 13 15 11 10 9 22 81 37 5 16 18 25 0 20 5 4 9 8 3 3 4 6 5 7 42 0 5 1 3 5 9 29 23 9 4 7 3 10 13 3 0 14 22 5 9 12 0 0 8 111 0 0 57 51 130 148 29 230 30 177 88 0 17 39 131 66 75 82 78 0 0 85 26 108 98 145 69 99 71 252 66 48 0 94 42 147 9 205 0 45 28 41 71 47 135 168 106 525 51 122 74 174 82 110 102 180 462 252 79 159 163 199 3 148 60 51 50 46 19 46 58 34 33 46 416 3 56 11 58 78 112 170 183 56 26 41 43 110 131 18 3 104 344 32 92 79 2 29 32 589 1 0 196 104 213 555 68 933 165 606 150 0 31 87 360 427 197 310 269 0 3 271 178 479 404 668 229 348 487 1159 185 137 0 164 258 377 29 744 53 324 464 122 293 155 286 490 189 3998 74 184 1219 530 147 524 274 946 6294 1219 237 780 2150 3116 7 874 91 90 199 132 162 92 87 301 314 288 2250 18 114 30 287 211 388 721 723 268 117 139 78 290 301 38 19 264 705 230 225 218 st227.d50.tazeell.k2.IL.US/207.63.38.22 7 st227.d50.tazewell.k12.IL.UL/207.63.38.22 ul407-kiv-pcl4.zcu.cz/147.228.63.163 ul407-kiv-pcl4.zcu.cz/147.228.63.163 pO3-1-177.htg.net/209.136.26.177 pg06.nic.ul.ie/136.201.110.184 dhcp-204.millernertin.cam/209.42.142.204 206.30.9.172/206.30.9.172 206.30.9.172/206.30.9.172 modrcable66.98.ntimi.vidotron.net/207.253.98.66 gateway.bookpges.co.uk/194.217.205.17 6 7 .253.98.6 nderable066.98.ntimi.vidotron.net/20 gateway.bookpages.on.uk/194.217.205.17 nodenbleO066.98.ntii.videotron.net/207.253.98.66 204.133.199.140/204.133.199.140 spc-isppe--uas-01-19.sprint.ca/209.103.30.20 tvavp23.televar.ocan/208.8.147.246 8 0 nmil.unie.cz/195.70.129.1 52.new-orleans-01.1a.dial-acces.att.net/12.65.208.52 nail.uniie.cz/195.70.129.180 crcssdl.tac.net/205.233.109.99 7 st227.d50.tazewell.kl2.il.us/207.63.38.22 nail.unie.cz/195.70.129.180 jt.netgroup.dk/195.41.198.105 7 st227.d50.tazewell.kl2.il.us/207.63.38.22 205.152.23.2/205.152.23.2 166-149-198.ipt.ol.canVl52.166.149.198 166-149-198.ipt.aol.cnV152.166.149.198 7 7 2.2.10 grxa6-ppl70.triton.net/209.1 grxa6-pppl70.triton.net/209.172.2.170 grxa6-pppl70.triton.net/209.172.2.170 grxa6-ppp170.triton.net/209.172.2.170 207.73.99.254/207.73.99.254 207.73.99.254/207.73.99.254 M M M M M M M M M M M M M M M M GLOM:Information Agglomerates 7 3471 3472 3473 3474 3475 3476 3477 3478 3479 3480 3481 3482 3483 3484 3485 3486 3487 3488 3489 3490 3491 3492 3493 3494 3495 3496 3497 3498 3499 3500 3501 3502 3503 3504 3505 3506 3507 3508 3509 3510 3511 3512 3513 3514 3515 3516 3517 3518 3519 3520 3521 3522 3523 3524 3525 3526 3527 3528 3529 3530 3531 3532 3533 3534 3535 3536 3537 3538 3539 3540 3541 3542 3543 3544 3545 3546 3547 3548 3549 3550 3551 3552 3553 3554 3555 3556 3557 3558 3559 3560 3561 3562 3563 3564 3565 3566 3567 3568 3569 3570 s3.pr2.cybrtom.can/208.19.155.61 s3.pn2.cybrtomn.can/208.19.155.61 adn-cust26.advdata.net/209.57.91.48 lkc-ts2-ip-07.atlantic.net/209.26.53.71 lkc-ts2-ip-07.atlantic.net/209.26.53.71 s3.pn2.cybrtomc.cn208.19.155.61 207.96.224.212/207.96.224.212 cpc204.axion.net/209.17.191.204 7 7 .11 117.detroit-07.nmi.dial-access.att.net/12.67.21 7 9 nyc-ny7O-51.ix.netcno.can/209.109.226.1 7 117.detoit-07.mi.dial-access.att.net/12.67.217.11 slip166-72-162-201.ne.us.ihn.net/166.72.162.201 198.30.208.139/198.30.208.139 198.30.208.139/198.30.208.139 hagll.infoo-m.ccr/208.196.32.113 4 7 5 .226.201.1 pop645.pdn.net/20 hagll.infoon.can/208.196.32.113 66 7 6 slip1 - 2-12-201.ne.usi.ih.net/166.72.162.201 hagll.infocon.ccn208.196.32.113 hagll.infoco.cna/208.196.32.113 slip166-72-162-201.ne.us.ihn.net/166.72.162.201 nedmncbleO66.98.ntimd.videotrm.net/207.253.98.66 hagll.infocan.coa/208.196.32.113 nodeanble066.98.ntid.videotron.net/207.253.98.66 nodacable066.98.ntimi.vidotron.net/207.253.98.66 booden.bio.psu.edu/128.118.180.192 slipl66-72-162-201.ne.us.ihn.net/166.72.162.201 benden.bio.psu.edu/128.118.180.192 benden.bio.psu.edu/128.118.180.192 nodemable066.98.ntini.videotron.net/207.253.98.66 benden.bio.pu.ediu/128.118.180.192 8 8 92 benden.bio.pu.edu/128.11 .1 0.1 benden.bio.pou.edu/128.118.180.192 20 5 2 38 24 4 23 . .7 . 0 ntrs-244mpp230.epix.net/ nodem1-19.no-net.can/206.242.114. 79 9 nedenl-19.no-net.o-on/206.242.114. nodemi-19.o-net.oon/206.242.114.79 noendl-19.o-net.can/206.242.114.79 7 9 nodEnt-19.on-net.omn/206.242.114. 209.67.72.110/209.67.72.110 209.67.72.110/209.67.72.110 4 7 . onden1-19.on-net.can/206.242.11 79 nedenl-19.o-net.ocan206.242.114. 9 198.76.242.183/198.76.242.183 175-147-1.ipt.ol.can/152.175.147.1 user-2113.fiber.net/204.250.13.113 dhack4-065.cybex.net/207.198.208.65 dreadnought.ce.nu.edu/134.114.64.90 slip129-37-92-130.i.u.ihn.net/129.37.92.130 slip129-37-92-130.n.us.ihn.net/129.37.92.130 rbedcpl.spl.org/209.63.97.197 slip129-37-92-130.mi.us.ihn.net/129.37.92.130 rbedhcpl.spl.org/209.63.97.197 rbedhcpl.spl.org/209.63.97.197 rbedhcpl.spl.org/209.63.97.197 7 7 .19 rbedhcpl.spl.org/209.63.9 7 .195 gv1237195.columbus.rr.cxxn/204.210.23 rbedhcpl.spl.org/209.63.97.197 gv1237195.columbus.rr.cn/'204.210.237.195 lCustllO.tnt22.tco2.da.uu.net/153.36.40.110 M1IwNl4-8.stlnet.can/209.96.5.8 lpazl04c.life.Arizona.E3J/150.135.70.245 7 0.245 lpazlO4c.life.Arizona.EDJ/150.135. dabcc-03p88.NMSU.Fdiu/128.123.41.198 dabcc-03p88.SU.Flu/128.123.41.198 dabcc-03p88.NMSU.Eduti/128.123.41.198 129 date 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980505 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 980506 time 8:20:49 H4 8:42:04FM 8:43:14PM 8:47:251M 8:48:58PM 8:49:03PM 8:53:07R4 9:06:3624 9:09:42 8M 9:13:1024 9:14:55R4 9:19:082M 9:50:53PM 9:57:20 2M 10:02:46 9M 10:04:38 8M 10:07:11 R4 10:09:40 R4 10:18:14 24 10:28:55 R4 10:46:20 2M 10:54:45 EM 10:57:00R4 11:03:05EM 11:16:2024 11:21:01R4 11:24:4924 12:02:10AM AM 12:03:34 0M 12:54:10 1:40:48 AM 1:43:55 AM 6:27:080M 6:59:06AM 8:49:080M 9:57:33AM 10:16:25 0M 10:52:11 094 11:03:00014 AM 11:04:14 11:05:530M 11:36:540M 11:38:170M 11:42:260M 11:47:140M 11:51:130M 11:53:45084 11:53:51 A14 11:57:00084 11:58:460M R4 12:31:21 12:36:4724 12:44:412M PM 12:50:45 1:57:022M 2:34:11PM 2:37:442M 3:15:421M 4:09:282M 4:32:5024 4:36:292M 4:40:1024 4:43:2724 4:46:47 4:49:55PM 4:54:392M 5:09:252M 5:21:212M 5:32:3824 5:38:552M 5:43:512M 5:48:4724 5:55:022M 6:09:0124 6:19:262M 6:20:42 6:42:31 6:48:240M 6:58:42 7±02:03 4 7:04:59 7:17:01 4 7:17:102M 7:18:09R4 7:18:5924 7:21:362M 7:24:00EM 7:31:01PM 7:34:4824 7:35:412M 7:37:42 7:41:3024 7:45:16 8:04:2724 8:06:2524 8:08:012M 8:09:472M 8:13:4724 8:16:34FM 9:22:222M 9:24:402M 9:37:33 10:28:0724 10:36:3924 M M M M M M M M score 29100 2450 3150 50 1850 8500 4500 3750 9750 6900 2150 9150 8100 13550 0 18700 4650 5900 3500 11350 4150 3400 3250 1450 4700 8250 1900 250 3850 3500 0 2850 6850 6550 0 1900 10750 0 0 100 300 500 500 8500 2200 4150 0 1500 4150 0 6200 10900 15650 6000 0 0 1300 1800 0 7900 10450 8600 8600 9350 9850 7000 3400 3000 3850 9500 9050 8300 8700 4450 5250 3100 5300 8800 11350 1450 4350 3400 11550 600 3700 8750 800 29800 0 500 3150 5450 1700 3700 2950 1450 3600 3850 2400 8350 4000 0 200 4700 duration 910 359 220 137 85 324 184 56 170 337 277 254 264 370 54 423 127 122 150 226 126 129 120 69 145 264 205 246 174 114 55 171 196 577 112 117 379 13 155 59 75 207 64 231 271 219 217 101 330 48 363 366 780 301 77 118 93 181 69 226 203 196 185 180 175 160 97 258 184 360 281 279 261 177 268 180 325 373 300 102 156 104 376 43 104 191 253 554 75 44 87 442 210 144 76 69 87 72 112 285 125 2 418 245 GLOM:Information Agglomerates baddias 50 4 5 0 7 18 9 6 17 21 4 18 18 24 0 32 10 11 8 21 8 8 5 2 9 22 5 0 8 6 0 4 13 12 0 4 27 0 0 0 1 2 2 34 4 11 0 4 10 0 19 28 31 14 0 0 2 3 0 16 17 19 16 17 21 12 6 11 9 22 18 16 15 9 12 6 11 17 20 3 9 8 21 1 6 19 2 52 0 2 6 21 5 9 6 3 6 7 4 18 8 0 0 13 hits 778 31 47 1 94 152 118 51 297 136 48 192 145 361 0 353 64 181 47 228 65 63 35 18 66 165 97 5 52 41 0 33 125 168 0 58 214 0 5 2 6 39 42 221 78 93 33 58 113 2 156 249 525 123 0 0 14 18 0 131 198 172 171 280 239 142 48 114 60 172 178 163 208 55 69 42 146 244 280 18 52 82 285 10 73 155 18 779 0 31 54 146 89 50 35 17 36 41 49 249 86 0 9 138 shots 1672 332 252 29 262 508 665 93 387 1139 289 676 253 707 7 795 273 256 146 412 241 176 177 65 255 639 237 56 224 103 25 154 291 422 3 240 600 0 19 18 16 148 116 534 471 332 56 119 442 18 718 836 1648 492 2 1 107 57 0 266 480 371 350 383 489 297 317 383 193 502 407 411 391 202 441 89 312 794 606 215 516 184 689 25 349 360 51 2556 1 86 163 581 322 143 93 46 83 74 110 987 400 0 25 672 ip address of player 3571 lpazl04c.life.Arizona.EIJ/150.135.70.245 3572 ad113-202.nngix.can.sg/165.21.113.202 3573 o.can/208.19.155.46 s36.pnl.cybrt 26 9 22 7 3574 . 7 .148.1 tsftll-126.gate.net/19 48 3575 .1 .126 tsftll-126.gate.net/199.22 3576 s36.pn1. cybrtown.can/208.19.155.46 8 26 7 3577 .14.1 tsftll-126.gate.net/199.22 3578 pp300.rtp.intrex.net/209.42.198.45 4 3579 5 pp300.rtp.intrex.net/209.42.198. 7 3580 4 tsOO3dl4.ind-in.concentric.net/206.173.97. 3581 tc2-20.utah-inter.net/208.14.200.150 3582 ts50ip36.cadvisicn.mcn207.228.73.36 3583 pool048-mn2.ds13-ca--us.dialup.earthlink.net/209.178.15.248 3584 pool048-nux2.ds13-ca-us.dialup.earthlink.net/209.178.15.248 3585 bds-ptblic.ib.ci.phoenix.az.us/207.246.36.153 3586 pool048-nsx2.ds13-ca-us.dialup.earthlink.net/209.178.15.248 78 24 8 2 9 3587 poo048-nnx2.ds13-ca-us.dialup.earthlink.net/ 0 .1 78 .15. 24 8 3588 pool048-rnw2.ds13--c-us.dialup.earthlink.net/209.1 .15. 3589 74.cleveland-06.oh.dial-access.att.net/12.67.197.74 3590 pool048-nex2.ds13-ca-us.dialup.earthlink.net/209.178.15.248 7 3591 ppp067-hnvrpa.netrax.net/208.192.148.6 6 3592 user95.netcarrier.<orn198.136.22 6 26 .95 1 3593 .2 .95 98.13 user95.netcarrier.cnm 3594 EIJ/18.223.0.26 BALIRICK.MIT. 3595 lCust88.tntl.beaverton.or.da.uu.net/153.35.201.88 88 3596 1Cust88.tntl.beaverton.or.da.uu.net/153.35.201. 8 3597 1Cust88.tntl.beaverton.or.da.uu.net/153.35.201.8 3598 206.48.60.116/206.48.60.116 3599 se-pub23.library.Arizona.KJ/128.196.102.123 3600 ppp018.n±ax4.las-vegas.rv.skylink.net/207.49.176.18 3601 EVAIGER.hayboonet.can/165.97.13.64 3602 EVAIGER.hayboet.can/165.97.13.64 7 3603 paris4-2.isdnet.net/194.149.1 5.129 3604 scc41959.dscc.dla.mnil/131.74.195.9 3605 su5-3.ida.liu.se/130.236.186.74 3606 so22.boh.busd.k12.co.us/161.97.203.22 3607 209.66.196.254/209.66.196.254 3608 TJBohan.unenfa.nnine.edu/130.111.116.59 3 7 99 3609 .1 .5 lcust5.tnt2.reoond.wa.da.uu.net/153. 3610 1cust5.tnt2.rehoind.va.da.uu.net/153.37.199.5 3 7 99 3611 .1 .5 1Cust5.tnt2.recodnd.a.da.uu.net/153. 3612 168.37.224.65/168.37.224.65 3613 168.37.224.65/168.37.224.65 3614 168.37.224.65/168.37.224.65 3615 168.37.224.65/168.37.224.65 3616 168.37.224.65/168.37.224.65 9 3617 0 jasper.w1u.ca/192.219.240. 3618 204.234.75.181/204.234.75.181 3619 168.37.224.65/168.37.224.65 3620 205.234.22.160/205.234.22.160 3621 K9 M103-14.splitrock.net/209.156.154.60 3622 client-125-14.bellatlantic.net/151.198.125.14 6 6 3623 0 .154. K9cyB103-14.splitrock.net/209.15 3624 KScyB103-14.splitrock.net/209.156.154.60 3625 2cust6O.tntl.phx1.da.uu.net/153.34.27.60 3626 209.76.80.243/209.76.80.243 3627 204.49.240.51/204.49.240.51 8 3628 .24 rncl4.ia.utexas.elu/128.83.8 3629 198.30.208.99/198.30.208.99 3630 hag2.infocn.ccm/208.196.32.104 3631 hag2.infoccm.canr/208.196.32.104 3632 hag2.infocan.ccm/208.196.32.104 3633 hag2.infoccu.ccW/208.196.32.104 3634 hag2.infocan.can/208.196.32.104 3635 hag2.infocca. ccrL/208.196.32.104 3636 hag2.infocan.ccW/208.196.32.104 3637 nedncableO066.98.iimi.videotran.net/207.253.98.66 3638 B02.reach.net/204.50.58.97 9 3639 dt043ndc.nnine=.rr.ccV204.210. 1.220 3640 dt043ndc.nine. rr. cc/204.210.91.220 3641 dt043ndc.naine.rr.caV204.210.91.220 3642 dt043ndc.rnaine.rr.ccm/V204.210.91.220 9 22 3643 1. 0 dt043ndc.nnjine.rr.canV204.210. 3644 199.106.87.155/199.106.87.155 23 3645 1Cot123.tnt3.seal.da.uu.net/208.253.65.1 3646 165.97.13.100/165.97.13.100 3647 207.194.178.141/207.194.178.141 38 66 8 8 3648 166-1 5-13 . ipt.ol.can/152.1 .185.1 3649 166-185-138.ipt.aol.can/±152.166.185.138 3650 spc-isp-no-uas-01-27.sprint.ca/209.103.24.28 3651 spc-isp-non-uao-01-27.sprint.ca/209.103.24.28 3652 g-1nsl-40.c2i2.can/207.98.161.105 3653 pool012-nox4.ds19-ca-us.dialup.earthlink.net/209.179.14.12 79 4 2 3654 .1 .1 pool012-nx4.ds19-ca-us.dialup.earthlink.net/209.1 3655 agns1-40.c2i2.can/207.98.161.105 4 7 3656 9.1 .12 pool012-nex4.ds19-ca-us.dialup.earthlink.net/209.1 3657 207.10.168.52/207.10.168.52 2 9 79 4 2 3658 pool12-onx4.ds19-ca-u.dialup.earthlink.onet/ 0 .1 .1 .1 3659 pn14-15.nidlink.canV206.96.75.56 3660 pn14-15.nidlink.can/206.96.75.56 3661 pn14-15.nidlink.on/V206.96.75.56 3662 ls.can/207.172.191.86 207-172-191-86.s22.al.nkt.o 86 3663 207-172-191-86.s22.as1.mkt.erols.can/207.172.191. 3664 12.6.167.177/12.6.167.177 3665 12.6.167.177/12.6.167.177 3666 12.6.167.177/12.6.167.177 3667 12.6.167.177/12.6.167.177 3668 12.6.167.177/12.6.167.177 6 7 69 22 3669 4 . 98 . 66 224.denver-02.co.dial-access.att.net/12. 3670 . nodeucable066.98.ntimi.videotron.net/207.253. 3671 nodatrable66.98.timi.videotron.net/207.253.98.66 3672 net15-cust140.den.wantweb.net/24.236.15.140 3 37 6 9 3 3673 . . .25 .da.uu.net/15 1Cust25.tnt6.lax 3674 204.222.143.156/204.222.143.156 130 data 980506 980506 980506 980506 980506 980506 980506 980506 980506 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 time 10:37:53 0M 10:39:192M 10:43:17 10:43:53PM 10:48:262M 10:57:052M 10:59:442M 11:02:012M 11:09:362M 2:10:36AM 2:12:35AM 6:41:21AM 8:22:26AM 11:36:34A24 11:36:35AM 11:36:36AM 11:36:37AM 11:36:37 11:36:38AM 11:36:39AM 11:36:39AM 11:36:40AM 11:36:41AM 11:36:42AM 11:36:42AM AM 11:36:43 11:36:44 AM AM 11:50:40 AM 11:50:41 AM 11:50:42 2M 12:20:12 EM 12:23:09 12:38:042M FM 12:39:15 12:41:10 12:49:44 R4 R4 12:54:52 12:56:0224 1:03:172M 1:23:542M 1:39:2624 1:46:46PM 1:50:33EM 1:53:16PM 1:58:39PM 2:08:46EM 2:10:462M 2:10:472M 2:34:082M 2:36:26PM 2:42:18PM 3:16:26PM 3:19:42PM 3:22:06 3:39:042M 3:45:02R4 3:58:0524 4:05:572M 4:18:442M 4:20:0824 4:20:092M 5:13:02R4 5:14:3524 5:24:2124 5:43:37 5:54:55PM 5:55:54FM 6:01:26 6:01:28R4 6:01:3324 6:06:36R4 6:09:58PM 6:10:132M 6:13:082M 6:15:322M 6:16:26PM 6:17:09 6:19:14 6:20:2124 6:21:4024 6:25:01R4 6:26:33 4 6:33:592M 6:37:492M 6:42:592M 6:47:142M 6:47:382M 6:50:26R4 6:52:0924 7:00:02PM 7:10:402M 7:12:552M 7:16:17 7:22:534 7:29:2124 7:31:592M 7:54:48 8:00:2024 8:02:36R4 8:14:472M 8:16:51EM 8:19:59FM 8:22:02R4 8:22:03 M M M M M M M M M M M score duration baddies hits shots ip address of player id# 2350 2950 0 5800 6200 1200 350 1650 1150 3350 2900 2400 1800 0 10300 4550 2800 0 4350 6250 900 600 6250 8300 0 11950 50 4300 3600 8800 4250 4650 100 0 50 1050 3050 50 0 850 4500 10100 10500 2000 7500 16100 4050 1050 2950 4450 1200 6250 4500 4100 0 1600 0 1300 0 3250 350 4100 0 3550 10650 23100 5100 0 9900 8700 600 4700 11500 4900 2900 3700 1750 2750 1350 950 6450 2600 1850 5350 4100 3000 3200 12600 8350 2650 3850 3550 0 3000 650 2250 250 3550 4050 0 2450 700 2750 6650 64 69 124 213 226 206 107 120 93 109 105 120 138 167 192 231 117 19 201 484 118 41 291 304 71 334 25 168 177 239 145 156 62 58 96 78 119 50 139 72 162 276 297 118 235 470 274 72 114 117 800 187 130 128 105 252 64 114 135 435 111 211 1 165 421 658 139 4 318 378 109 184 277 175 179 183 82 107 50 62 185 75 97 199 112 98 303 403 198 290 156 119 95 78 46 131 56 217 547 36 107 219 108 297 5 9 0 13 15 2 0 5 3 5 6 4 4 0 23 18 8 0 14 18 1 1 18 26 0 31 0 10 6 18 11 13 0 0 0 4 5 0 0 3 11 25 18 6 21 31 9 3 6 9 2 14 8 12 0 3 0 1 0 13 0 8 0 5 25 55 13 0 22 26 2 9 27 11 9 7 7 11 5 3 11 4 4 13 8 5 7 35 16 5 6 7 0 6 2 4 1 7 11 0 4 2 11 14 85 125 0 118 122 15 7 101 75 41 34 25 85 3 225 153 82 0 143 106 13 6 129 204 0 269 1 91 44 209 98 86 7 4 5 38 36 1 2 44 64 239 272 109 223 416 91 57 35 54 12 111 56 91 3 29 0 20 2 133 7 58 0 92 328 689 140 0 188 241 15 77 279 88 117 46 73 72 61 70 109 28 25 95 64 50 66 337 161 68 42 41 10 46 31 34 22 41 115 37 27 82 108 123 162 362 4 777 533 52 68 581 137 154 159 79 110 11 416 540 248 1 519 711 57 7 1239 1955 20 1609 18 375 326 724 187 211 12 5 25 122 161 10 47 69 135 896 774 244 561 1227 178 104 76 179 54 300 385 316 66 92 1 108 20 2220 56 228 0 168 1302 2118 296 0 771 1411 54 279 717 285 481 370 328 565 203 134 529 239 151 430 119 116 357 1406 270 242 149 144 16 92 42 198 64 243 878 45 106 146 198 543 204.222.143.156/204.222.143.156 204.222.143.156/204.222.143.156 checkers-fddi.cray.o-no/137.38.235.5 204.222.143.156/204.222.143.156 ts7-16.frd.cyberidghoy.net/209.161.34.180 30ast134.tntl.phxl.da.uu.net/153.34.215.134 34 3 34 2 . . 15.1 3Cust134.tntl.phxl.da.uu.net/15 3Cut134.tnt1.phx1.da.uu.net/153.34.215.134 7 2 ck47-172.doub.ccpuserve.cun/199.174.179.1 193.14.53.10/193.14.53.10 193.14.53.10/193.14.53.10 dhcp-892195149.qualcmn.cun/129.46.238.194 ws103.ini.cz/195.212.195.103 198.234.86.182/198.234.86.182 207.157.48.194/207.157.48.194 168.221.114.154/168.221.114.154 169.244.152.67/169.244.152.67 7 .142.136.102 bodine.cobite.com/20 168.221.114.154/168.221.114.154 cx11539-a.cv1.adca.hron.cn/24.0.137.107 vikings.tte.lv/159.148.220.11 206.30.9.204/206.30.9.204 152.111.35.141/152.111.35.141 152.111.35.141/152.111.35.141 white2.nada.kth.se/130.237.226.124 152.111.35.141/152.111.35.141 42 9 3 44 . .l60. dhcp12.dacapo.se/1 207.232.193.154/207.232.193.154 6 gorgon.cs.tu-berlin.de/130.149.31.10 207.232.193.154/207.232.193.154 159.164.201.74/159.164.201.74 159.164.201.74/159.164.201.74 208.224.45.50/208.224.45.50 208.224.45.50/208.224.45.50 208.224.45.50/208.224.45.50 9 6 5.l1 spk2-13.ipeg.conV206.96. 169.244.152.67/169.244.152.67 4 9 48 .24 . .18 franklinl8.franklin.cc±/20 calzone.stardiv.de/62.156.160.60 208.198.210.126/208.198.210.126 will-25s.citynet.net/207.0.254.85 208.144.248.13/208.144.248.13 205.152.23.2/205.152.23.2 205.152.23.2/205.152.23.2 205.152.23.2/205.152.23.2 205.152.23.2/205.152.23.2 3 7 .19.1.185 205.152.23.2/205.152.23.2 ts1-16.she.cyberhighwy.net/209.161.50.22 ts1-16.she.cyberhighway.net/209.161.50.22 unknown-35-6.nuhse.cc/206.189.35.6 198.163.125.224/198.163.125.224 198.163.125.223/198.163.125.223 198.163.125.223/198.163.125.223 207.203.196.86/207.203.196.86 166.34.97.123/166.34.97.123 nrjava.miedia.nit.edu/18.85.1.12 3675 3676 3677 3678 3679 3680 3681 3682 3683 3684 3685 3686 3687 3688 3689 3690 3691 3692 3693 3694 3695 3696 3697 3698 3699 3700 3701 3702 3703 3704 3705 3706 3707 3708 3709 3710 3711 3712 3713 3714 3715 3716 3717 3718 3719 3720 3721 3722 3723 3724 3725 3726 3727 3728 3729 3730 3731 3732 3733 3734 3735 3736 3737 3738 3739 3740 3741 3742 3743 3744 3745 3746 3747 3748 3749 3750 3751 3752 3753 3754 3755 3756 3757 3758 3759 3760 3761 3762 3763 3764 3765 3766 3767 3768 3769 3770 3771 3772 3773 3774 3775 3776 3777 3778 GLOM:Information Agglomerates ppp-207-193-1-185.kscyno.swbell.net/20 pp114.uio.no/129.240.240.119 205.213.93.2/205.213.93.2 9 49.new-york-26.ny.dial-access.att.net/12.68.191.4 147.133.43.120/147.133.43.120 tcl-73.utah-inter.net/208.14.200.83 6 36 1.1 rc-136.netanecan.net/207.142.1 149.127.131.243/149.127.131.243 ntrs-244ppp219.epix.net/205.238.244.219 24 4 2 9 2 23 05. 8. . 1 ntrs-244ppp219.epix.net/ jtrobinon.ne.medione.net/24.128.64.245 199.79.138.175/199.79.138.175 24 jtrobinono.ne.nedione.net/24.128.64. 2 38 2 4 2 9 5 .4 .1 ntrs-244ppp2l9.epix.net/205. ocal-pn3-19.mfi.net/205.161.238.96 6 2 38 96 . ocal-pn3-19.afi.net/205.1 1. jtrobinson.ne.mediaone.net/24.128.64.245 ol-pn3-19.mfi.net/205.161.238.96 33 4 6 42 .2 .11 .1 nedn7-73.no-net.canV20 sol-gn3-19.mfi.net/205.161.238.96 n±den7-73.no-net.cam/206.242.114.13333 noden7-73.no-net.om/206.242.114.1 nmden7-73.ro-net.can/206.242.114.133 neden7-73.no-net.can/206.242.114.133 4 33 .1 noden7-73.no-net.canV206.242.11 neden7-73.no-net.can/206.242.114.133 208.204.46.20/208.204.46.20 208.204.46.20/208.204.46.20 ca-lde.unnu.umich.edu/141.213.34.105 calder.unnu.umich.edu/141.213.34.105 206.14.7.105/206.14.7.105 2 44 21 1 . 171-144-211.ipt.aol.cnVl5 2 .171.1 3 34 4 .um±ich.ed/1 1. 1 . .105 calder.u .umi±ch.edu/141.213.34.105 calder.u pc612.shor.kcls.org/198.104.21.22 22 4 2 9 8.10 . 1. pc612.shor.kc1s.org/1 ppp78.wingsisp.can207.142.108.7867 6 . 8.10 10.denver-01.co.dial-access.att.net/12. slip166-72-219-153.ny.us.ihn.net/166.72.219.153 slip166-72-219-153.ry.us.ihn.net/166.72.219.153 gv1237195.colunb.r.can/204.210.237.195 dabc-03p88.NKsU.Fldu/128.123.41.198 7 166-156-227.ipt.aol.can/12.166.156.22 atl-ga57-34.ix.netcan.amn/207.223.188.98 98 7 2 23 . .188. atl-ga57-34.ix.netcan.can/20 rvl-ndl-01.ix.netcan.can/V205.187.208.33 rvl-nd1-01.ix.netcan.caV205.187.208.33 88 98 7 .223.1 . atl-ga57-34.ix.netcan.can/20 131 date 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980507 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 time 8:24:14 2M 8:24:16 0M 8:26:07 FM 8:26:230M 8:26:450M 8:27:390M 8:29:240M 8:41:240M 8:42:310M 9:03:300M 9:05:522M 9:07:310M 9:13:128M 9:33:43R4 9:36:05EM 9:46:33EM 9:50:13EM 9:51:430M 9:52:280M 10:21:0504 10:34:07EM 11:03:558M 11:59:128M 12:32:570M 8:43:54A14 8:43:55AM 8:43:56A14 8:43:57A14 8:44:38AM 9:41:53AM 9:59:37 AM 10:04:55AM 10:06:00AM 10:06:28AM AM 10:10:16 8M 10:31:48 AM 10:39:01 10:43:21 A14 10:56:46 AM 10:58:11 AM 10:58:24 10:59:21 AM 10:59:35 AM 11:16:52 9M 11:17:35 AM 11:21:03 AM AM 11:24:32 11:26:20 AM AM 11:28:42 11:43:00 A14 11:49:36 11:53:04 A81 EM 12:34:26 EM 12:39:23 12:44:11 0M 12:47:05 PM 12:49:03 0M 1:01:23 P4 1:03:43PM 1:17:14 PM 1:23:4924 1:26:50PM 1:30:22 2M 1:35:17 R4 1:42:14 1:42:4524 1:47:562M 1:51:540M 1:53:020M 2:17:37 2:20:06 2:22:052M 2:35:532M 2:45:0524 2:46:1824 2:55:0524 2:55:062M 3:06:58 24 3:09:11 24 3:11:3024 3:17:352M 3:22:27 2M 3:34:11 3:48:5924 3:57:51 4:07:2124 4:26:0224 4:43:14 4:48:27PM 4:54:51 2M 5:01:05 2M 5:01:5524 5:14:29 PM 5:15:23R4 5:17:44 24 5:18:33 2M 5:19:08 054 5:20:11 0M 5:21:48 5:22:58 5:23:15 5:25:2324 5:27:2524 5:30:40 M M M M M M M M M M M M score 3600 1200 1700 3500 4750 0 6950 8400 0 2400 13300 2500 9350 4250 650 3250 4450 8700 5650 1000 8900 2500 2500 6850 3300 0 2500 500 8650 10250 650 4400 5200 2150 8000 10050 5850 5050 950 2650 0 1250 0 0 5200 8150 8600 2100 5050 0 4200 0 6350 1700 3400 2050 4700 15950 8700 450 6200 9250 3050 8450 0 50 3900 2650 0 750 5350 7350 3600 650 7750 19400 7550 2650 49650 1800 8150 6000 0 1800 100 13500 2650 3900 1300 2700 5050 250 3950 5700 2900 9850 2100 3550 1200 1100 3650 4350 5150 5400 duration 111 120 87 128 136 44 141 141 93 346 473 84 324 465 130 113 126 293 119 138 697 134 140 338 234 4 94 20 77 207 95 310 135 73 377 403 277 210 61 94 4 41 4 21 167 191 193 92 123 83 381 118 359 126 271 67 103 590 391 366 2059 165 145 277 152 45 294 217 46 44 134 161 106 177 294 509 446 150 1433 225 480 270 8 493 93 372 127 200 47 296 341 141 253 325 121 407 263 132 78 88 155 101 106 144 GLOM:Information Agglomerates haddies hits 6 4 4 14 9 0 12 13 0 6 34 10 22 10 1 7 8 14 10 1 34 10 7 11 7 0 10 2 14 27 1 9 12 8 17 26 14 11 3 4 0 5 0 0 11 15 17 7 12 0 11 0 24 5 6 3 10 38 16 1 16 20 8 19 0 0 11 5 0 3 17 14 7 2 19 31 15 7 197 3 22 11 0 5 0 33 6 8 5 5 14 0 8 13 6 25 4 8 2 3 9 9 12 15 53 77 24 110 76 0 112 220 0 107 401 118 241 96 14 45 91 231 97 14 240 72 89 170 42 0 116 71 255 226 7 52 76 71 158 214 94 82 42 30 0 67 0 0 107 137 157 110 89 3 96 0 178 95 100 24 58 460 360 33 170 222 69 183 0 23 86 36 0 48 157 159 47 48 204 456 136 100 1038 20 152 103 0 73 3 498 88 50 68 54 103 5 65 208 37 211 24 48 12 52 51 81 86 242 shots 155 136 59 410 345 2 267 474 0 779 1384 449 1128 676 304 113 131 459 163 62 3950 155 232 294 556 5 295 106 600 709 30 309 244 136 488 1338 452 392 77 103 1 125 14 1 439 465 519 366 534 122 661 18 929 201 437 60 124 1429 790 1230 529 418 247 541 5 57 796 675 4 61 416 352 190 78 588 954 507 261 4006 228 622 403 0 156 11 1646 232 356 123 231 337 247 344 640 140 813 277 238 77 105 320 256 235 491 id# ip address of player 3779 Extensio--131B.CSS.CPSr.EW/128.193.102.154 3780 rvl-ndl-01.ix.netcam.cmo/205.187.208.33 7 3 3781 rvl-nd1-0l.ix.netecm.ccmV205.18 2 .208.3 8 8 3782 mrjava.nedia.mit.edu/1 . 5.1.1 3 4 3783 .102.15 Extosion-131B.C0.CSr.EDU/128.19 3784 nrjava.media.nt.edu/18.85.1.12 3785 Extnsion-131B.CSS.CPSr.E[U/128.193.102.154 8 3786 1 1Custl8l.tnt3.nunassas.va.da.uu.net/208.252.85.1 3787 et7-15.qtm.net/206.53.233.107 8 3788 118.philadelphia-05.pa.dial-acess.att.net/12.68.111.11 7 2 3 98 3789 noderable066.98.ntimni.vidotron.net/20 6 7 . 53 . .66 3790 nudecable066.98.ntimi.vidotrn. net/20 .25 .98. 6 3791 nodenrableO66.98.ntimi.videotron.net/207.253.98.66 3792 sc6.vico.net/208.223.80.15 3793 sc6.vico.net/208.223.80.15 3794 ppp208.oscow.<xn/207.141.26.208 3795 12.6.167.172/12.6.167.172 3796 pp208.nscow.a-n/207.l41.26.208 3797 12.6.167.172/12.6.167.172 3798 12.4.248.230/12.4.248.230 3799 bobll.olywa.net/205.163.58.211 3800 van-bc8-08.netcm.ca/207.181.73.136 3801 205.152.23.2/205.152.23.2 3802 205.152.23.2/205.152.23.2 3803 207.125.48.234/207.125.48.234 3804 207.125.48.234/207.125.48.234 3805 207.125.48.234/207.125.48.234 3806 209.160.99.16/209.160.99.16 3807 209.160.99.16/209.160.99.16 3808 199.252.50.239/199.252.50.239 3809 dfbfl4-10.gate.net/199.227.117.10 3810 dfbfl4-10.gate.net/199.227.117.10 3811 jazz.evc.kl2.nf.ca/205.251.11.14 3812 dfbfl4-10.gate.net/199.227.117.10 3813 160.7.64.167/160.7.64.167 3814 rtv-40.nndera-01.nadnet.net/206.190.157.140 3815 dialup02O.intertek.net/209.83.158.264 3 47 3816 1oust147.tnt1.reoind2.wa.da. uu.net/208.250.2 .1 3817 st06.tetranetsoftware.ccn206.248.25.23 3818 209.1.11.34/209.1.11.34 3819 209.1.11.34/209.1.11.34 3820 209.1.11.34/209.1.11.34 3821 209.1.11.34/209.1.11.34 3822 93. freemarket. cc/206.210.69.93 3823 207.232.193.204/207.232.193.204 3824 207.232.193.204/207.232.193.204 3825 207.232.193.204/207.232.193.204 3826 207.232.193.204/207.232.193.204 3827 207.232.193.204/207.232.193.204 3828 168.37.224.71/168.37.224.71 3829 168.37.224.71/168.37.224.71 3830 209.49.193.129/209.49.193.129 7 3831 4.226.45 sco22645.dsecdla.mil/131. 3832 198.234.86.135/198.234.86.135 3833 198.234.86.135/198.234.86.135 3834 207.127.134.90/207.127.134.90 3835 207.127.134.90/207.127.134.90 3836 198.234.86.135/198.234.86.135 3837 198.234.86.189/198.234.86.189 3838 du66-6.pp.algonet./195.100.6.66 3839 207.248.185.80/207.248.185.80 3840 207.248.185.80/207.248.185.80 3841 166-232-172.ipt.aol.ca1c52.166.232.172 3842 166-232-172.ipt.ol.can/152.166.232.172 3843 140.189.127.43/140.189.127.43 3844 aphrodite-137.dialin.gremepa.net/206.205.118.137 7 3845 aphrodite-137.dialin.gremnepa.net/206.205.118.13 8 37 3846 .1 aphrodite-137.dialin.greenepa.net/206.205.11 3847 aphrodite-137.dialin.greenepa.net/206.205.118.137 6 97 3848 . 7 kipa3pp32.alltel.net/166.102.11 3849 kipa3rp32.alltel.net/166.102.116.9 0 83 3850 .1 pg05.mic.ul.ie/136.201.11 3851 pc248-037.ich.ucl.ac.uk/194.82.248.37 7 3852 host-209-214-2-97.mia.bellsouth.net/209.214.2.9 3853 205.152.23.2/205.152.23.2 3854 205.152.23.2/205.152.23.2 3855 tc2-117.utah-inter.net/208.14.200.247 3856 170.181.182.130/170.181.182.130 3857 host-209-214-2-97.mia.bellsouth.net/209.214.2.97 3858 h212.s245.ts.hinet.net/168.95.245.212 2 9 2 4 2 97 3859 0 . 14 .2 .97 host-209-214-2-97.mnia.bellsouth.net/ 3860 . . hxst-209-214-2-97.mia.bellsouth.net/209.21 7 3861 vocstu09.narissa40.org/205.216.223.1 70 3862 8 votul7.mrissa40.org/205.216.223.1 3863 sgva-23.ucsd.edu/132.239.126.229 3864 172-171-168.ipt.aol.can/152.172.171.168 3865 207.96.161.196/207.96.161.196 3866 204.216.87.202/204.216.87.202 7 3867 ip137.rutland2.vt.pib-ip.psi.net/38.26.145.13 4 78 2 3868 .78 . host-209-214-78-2.atl-n.bellsouth.net/209.21 3869 .2 host-209-214-78-2.atl-n.bellouth.net/209.214. 3870 207.113.243.102/207.113.243.102 3871 host-209-214-78-2.atl-n.bellsouth.net/209.214.78.2 3872 vet-aff.cub.wu.edu/134.121.188.50 3873 207.203.171.29/207.203.171.29 3874 cx53227-a.elejnl.sdca.hlm.can/24.4.69.34 9 2 4 78 2 78 3875 host-209-214- -2.atl-n.bellouth.net/20 . 1 . . 3876 207.203.171.29/207.203.171.29 3877 207.203.171.29/207.203.171.29 3878 206.210.132.68/206.210.132.68 3879 pn3a26.bn.sover.net/206.25.65.216 6 6 3880 pn3a26.ben.sover.net/206.25. 5.21 3881 pn3a26.ben.sover.net/206.25.65.216 3882 206.232.107.94/206.232.107.94 132 date 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 time 5:32:2324 5:41:28EM 5:47:58EM 5:52:32PM 5:53:30EM 5:57:19PM 5:58:092M 5:59:232M 6:02:10PM 6:03:042M 6:06:14 6:07:07 6:39:40 7:04:46 7:06:41 7:09:47 7:12:052M 7:12:232M 7:12:3524 7:17:492M 7:19:24FM 7:30:19M 7:30:462M 7:32:4124 7:33:16FM 7:34:10 4 7:35:38 7:41:4424 7:44:3724 7:46:2124 7:52:422M 7:54:5824 8:06:3924 8:13:26 8:14:49 8:17:52 8:18:4524 8:21:49M 8:21:5124 8:23:1824 8:24:362M 8:25:312M 8:25:5624 8:27:5024 8:35:0824 8:35:172M 8:39:0524 8:46:2024 8:48:48 8:49:5124 8:50:4024 8:50:492M 8:50:59 8:52:122M 8:52:39 8:54:02 8:54:542M 8:56:10 8:56:362M 8:58:152M 9:00:242M 9:01:40 9:02:22R4 9:03:0324 9:05:1124 9:06:13 9:12:282M 9:13:02 4 9:16:1724 9:17:0424 9:17:4724 9:22:472M 9:28:12FM 9:28:2524 9:37:402M 9:40:242M 9:42:372M 9:50:48 9:52:56 9:55:3924 9:59:51 10:02:2324 10:03:08 10:04:54 10:04:5524 FM 10:08:14 10:08:18 FM R4 10:08:41 10:09:29 24 2M 10:10:03 10:10:2224 10:11:462M 10:13:502M 10:14:3824 10:15:282M 10:19:3824 10:20:282M 10:21:42PM 10:23:38PM 10:24:4924 10:25:0324 10:26:33 10:27:1024 10:32:4924 M M M M M M M M M M M M M M M M M M M M M M M score 3500 0 10050 0 8950 13500 8000 5350 9200 9700 11350 1450 7750 3750 3850 6200 3950 5200 3150 0 3050 6600 4200 2400 1750 5550 10250 0 3500 25000 750 850 1800 750 1350 10650 3750 9450 4250 2900 0 10850 5900 8950 25300 1050 4750 5250 2800 4150 50 3600 2500 1900 0 200 50 2400 0 3800 4350 38150 3050 6050 2500 1800 9400 6100 6700 250 10200 8650 3500 15750 2950 1800 3750 450 1200 9200 9950 3850 4200 4050 2600 4200 4500 1850 3200 2800 3750 5200 5650 7150 18550 20250 11700 4050 3850 850 0 6000 2550 900 duration 66 59 1322 50 213 214 323 109 152 895 229 38 181 143 106 169 225 139 101 135 94 257 175 153 141 188 304 91 91 628 159 100 451 199 75 167 36 167 246 848 90 417 140 102 234 48 205 226 89 59 39 41 116 58 9 90 35 198 72 421 247 526 99 273 109 136 422 392 190 56 471 284 125 320 105 110 116 54 111 248 187 177 164 132 84 157 142 227 59 136 107 123 289 156 261 238 354 163 801 75 4 141 110 150 GLOM:Information Agglomerates baddies 6 0 33 0 19 22 32 11 15 33 19 3 15 8 7 12 9 11 7 0 6 18 9 4 7 11 25 0 7 56 1 2 3 3 4 22 5 17 13 6 0 23 7 15 48 2 13 12 5 7 0 4 4 2 0 0 0 4 0 7 9 61 5 16 4 3 22 16 10 0 24 19 9 27 9 3 6 1 2 22 20 7 9 10 8 7 9 6 5 5 7 12 17 13 33 32 27 10 14 3 0 24 4 1 hits 154 0 219 0 226 407 222 96 273 239 359 34 150 57 50 121 73 162 67 0 71 144 107 27 81 94 285 0 58 774 18 45 42 105 89 297 86 309 123 34 0 401 128 164 596 15 88 126 32 98 3 76 26 61 20 50 38 26 0 47 58 582 31 111 26 25 202 194 232 5 265 219 71 586 95 20 49 45 49 210 291 44 99 61 100 91 66 52 35 43 49 93 145 187 316 329 380 117 122 44 0 169 45 12 shots 244 4 884 1 1312 1306 1299 501 838 1116 1212 153 429 88 115 271 189 308 115 17 185 1593 600 51 208 650 1452 1 314 3475 83 178 462 124 305 861 129 694 505 605 31 1716 497 389 1446 48 267 399 80 153 13 105 83 123 22 64 38 55 2 1268 349 1352 164 894 122 64 1022 687 289 8 1071 855 129 1184 203 44 102 99 230 601 518 140 340 173 234 255 258 244 174 108 206 271 398 328 742 622 1928 248 1229 68 4 315 235 81 id# ip address of player 3883 206.232.107.94/206.232.107.94 3884 dicb-21.nd.eau.execpc.ocn/l69.207.98.150 3885 usr-401-5-39.ISD.net/208.238.143.39 3886 cle1port1.pon.on/206.229.114.11 3887 sp8.nnth.unn.ed/160.94.6.136 3888 sp8.nnth.un.edu/160.94.6.136 3889 clelportl.pem.omnV206.229.114.11 3890 op8.nmth.unn.edu/160.94.6.136 36 3891 sp8.nmth.u.edu/160.94.6.1 3892 usr-401-5-39.ISD.net/208.238.143.39 3893 sp8.nnth.un.edu/160.94.6.136 6 94 36 3894 0. .6.1 sp8.nath.unn.edu/1 3895 ad50-126.ar1. ccpuserve.cr/ 199.174.167.126 3896 aus-tx25-17.ix.netcc.ocn/207.221.69.81 3897 au-tx25-17.ix.netcan.oano207.221.69.81 3898 aus-tx25-17.ix.netan.can/207.221.69.81 3899 calliandra.spry.cnV198.185.1.170 3900 aus-tx25-17.ix.netcan.caV207.221.69.81 3901 spc-isp-tor-uas-03-12.sprint.ca/209.5.16.113 3902 198.30.208.19/198.30.208.19 3903 208.11.193.161/208.11.193.161 3904 185.san-francisco-13.ca.dial-access.att.net/12.64.160.185 3905 nmch-21.truelink.net/207.155.71.135 3906 h-207-1-145-42.netscape.can/207.1.145.42 3907 166.41.204.252/166.41.204.252 7 7 3 3908 .155.1.1 5 nach-21.truelink.net/20 3909 185.oan-francisco-13.ca.dial-acoss.att.net/12.64.160.185 3910 brost.lib.buffalo.edu/128.205.191.27 3911 ad36-229.arl.ccruserve.cam/199.174.139.229 3912 185.san-franciso-13.ca.dial-access.att.net/12.64.160.185 3913 d12.5200-1.plantnet.com/208.141.196.112 3914 ingrid.schrodinger. can/206.231.140.228 6 3 4 2 28 3915 .2 1.10. ingrid.schrodinger.can/20 3916 Rivervie41.tbayte1.net/204.101.55.105 3917 Riverview4l.tbaytel.net/204.101.55.105 3918 Riverview41.tbaytel.net/204.101.55.105 3919 Rivervie41.tbaytel.net/204.101.55.105 3920 Riverview41.tbaytel.net/204.101.55.105 3 3921 3.211 pnl-01.od22.bc.ca/206.12. 3922 ingrid.schrodinger.can/206.231.140.228 3923 usr30-dialupl9.mix2.Atlanta.nri.net/166.55.58.83 3924 opc-isp-van-uas-26-44.sprint.ca/209.103.5.45 3925 nn-pq6-26.netcan.ca/207.181.92.218 3926 non-pq6-26.netcan.ca/207.181.92.218 3927 spc-isp-vm-uas-26-44.sprint.ca/209.103.5.45 3928 ti21a31-0011.dialup.online.no/130.67.193.203 3929 ti2la3l-0011.dialup.online.no/130.67.193.203 3930 dd06-080.dub.carguserve.can/199.174.148.80 3931 ip26.vanl.pacifier.cc-n206.163.4.26 3932 ci85061-a.nashl.tn.hane.cam24.2.97.219 3933 usm-37-97.wans.net/208.205.37.113 3934 tn.hxnm.aon/24.2.97.219 ci85061-a.nash1 3935 ip26.vanl.pacifier.coa/206.163.4.26 3936 ci85061-a.nashl.tn.hxmn.can/24.2.97.219 3937 ci85061-a.nashl.tn.hn.±con/24.2.97.219 3938 usm-37-97.wans.net/208.205.37.113 3939 usm-37-97.wms.net/208.205.37.113 3940 dia1217.abacan.axn/207.253.161.77 3 3941 0 to.nci.net/166.55.8.1 usr23-dialup2.rnix1.Sacra 3942 ip26.vanl.pacifier.can/206.163.4.26 3943 dia1217.abaom.can/207.253.161.77 3944 ci85061-a.nashl.tn.hano.canV24.2.97.219 6 77 3945 1. dial217.abacn.caV207.253.1 3946 ip26.van1.pacifier.can206.163.4.26 3947 ip26.vanl.pacifier.can/206.163.4.26 3948 74.sa-frciso-11.ca.dial-access.att.net/12.64.125.74 3949 ip26.vanl.pacifier.ccrn/206.163.4.26 74.san-francio-11.ca.dial-access.att.net/12.64.125.74 3950 3951 adu69.otr.ptd.net/204.186.6.69 3952 p3oa26.ben.sover.net/206.25.65.216 221.an-francio-13.ca.dial-access.att.net/12.64.160.2213953 3954 221.san-franciso-13.ca.dial-access.att.net/12.64.160.221 3955 sac-ca6-13.ix.neto.ca/V198.211.110.205 3956 221. n-francisoo-13.ca.dial-access.att.net/12.64.160.221 76 3 3 3957 . 4.51.1 1Cust48.nax6.washingtmo..nm.uu.net/15 3958 van-bc12-25.netcan.ca/207.181.74.153 3 7 8 74 3959 .1 1. .15 a-bc12-25.netcan.ca/20 3960 us-43-28.wans.net/208.205.43.44 3961 uso43-28.wans.net/208.205.43.447 3962 1Cust199.tntl.orll.da.uu.net/208.250.7 8 7 7 .199 3963 .250. .199 1Csot199.tt1.r11.oda.uu.net/20 3964 user-381d0gk.dialup.mindsprig.omn/209.86.130.20 3965 wnstO-sh2-portll3.snet.net/204.60.37.113 3966 user-381d0gk.dialup.mindspring.can/V209.86.130.20 7 3967 .113 wnstOO-sh2-portl13.snet.net/204.60.3 3968 wnstOO-sh2-portll3.snet.net/204.60.37.113 3969 128.ledngton-Ol.ky.dial-acces.att.net/12.66.70.128 66 3970 66.louston-03.tx.dial-access.att.net/12.65.130. 7 3 3971 .11 wnstOO-sh2-portll3.mnet.net/204.60.3 3972 kit-cnl-39.netcan.ca/207.181.77.103 3973 128.lexington-01.ky.dial-access.att.net/12.66.70.128 3974 vnstOO-sh2-port113.snet.net/204.60.37.113 3975 66.houston-03.tx.dial-access.att.net/12.65.130.66 3976 3977 ci85061-a.nashl1.tn.hnme.can/24.2.97.219 7 3978 .219 ci85061-a.nashl.tn.8xne.<xrn24.2.9 3979 eknapp.housing.res.keot.edu/131.123.48.233 7 3980 user-381d44j.dialup.rmindspring.c-±n/209.86.144.14 3 7 8 77 3981 .1 1. .10 kit-on1-39.netcan.ca/20 3982 nic-c09-041.rw.mediaone.net/24.131.9.41 3983 nic-c09-041.nw.ndiaone.net/24.131.9.41 3984 kit-on1-39.netcain.ca/207.181.77.103 3985 nic-c09-041.nw.nediaone.net/24.131.9.41 3986 doyl222-pri.voiceet.aom207.103.116.152 wnst0o-sh2-portll3.snet.net/204.60.37 133 date time 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980508 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 10:32:57 10:34:2824 10:36:0524 10:36:15 10:38:22 10:41:1124 10:45:402M 10:48:412M 10:49:492M 10:51:442M 10:52:232M 10:52:582M 11:05:162M 11:10:372M 11:12:5724 11:20:0324 11:21:4524 11:31:562M 11:42:12 12:02:02AM 12:04:52AM 12:09:08AM 12:09:12AM 12:11:20AM 12:13:54AM 12:16:29AM 12:20:572M 12:21:222M 12:22:392M 12:24:11 12:31:072M 24 12:40:30 2M 12:40:39 12:41:27 2M 2M 12:43:28 12:45:24 12:45:28 24 2M 12:57:54 2M 12:58:07 2M 12:59:57 1:05:022M 108:56 1:11:1424 1:14:222M 1:14:252M 1:18:142M 1:23:1024 1:25:222M 1:25:5124 1:30,06 1:31:32 1:53:3024 1:55:522M 1:57:122M 1:59:352M 2:00:272M 2:00:492M 2:07:132M 2:07,272M 2:34:132M 2,36:342M 2:38:2924 2:39:3624 2:46:0124 2:46:15 2:47:372M 2:49:59 2:54:05 2:58:2624 2:58:3524 3:04:252M 3:38:312M 3:40:4124 3:42:512M 4:12:422M 4:20:392M 4:45:2924 5:39:4224 5:42:28 5:42:39 5:45:002M 5:46:31 6:08:08 6:21:42 6:43:462M 6:45:442M 6:46:58AM 6:48:56 7:28:0924 7:28:36AM 7:32:152M 7:32:322M 7:43:452M 7:50:12AM 7:53:29AM 8:07:0824 8:09:56 8:20:46 8:24:08AM 8:30:36M 8:30:56AM 8:32:18A4 8:32:34AM 8:35:362M M M M M M4 M M M M M M M M M M M M M M M id# score duration baddies hits shots ip address of player 0 0 0 12300 3250 6600 0 4400 2450 2000 3250 8050 2300 4050 3900 4000 3150 3950 4050 2150 9300 9650 1600 5950 1900 1800 15450 0 0 2650 0 8250 5700 2000 4550 1550 6150 4250 750 3300 9000 1450 4950 7850 2550 7350 11300 6500 1500 3550 5450 2850 2650 4200 6050 600 4100 3600 2050 6700 5000 0 4850 5600 13150 4250 7900 12750 5600 6750 32150 4350 2100 6800 22700 3350 4600 4300 3000 3900 6250 4050 10350 3100 650 0 200 5750 4350 8500 3450 9650 43550 950 4800 7600 5650 0 200 6050 400 2600 3350 7350 46 66 79 838 155 134 181 124 187 93 131 231 78 65 89 166 86 96 215 169 292 495 74 107 278 140 692 1 70 174 96 249 386 94 162 85 225 258 41 94 286 80 142 170 67 207 277 116 107 195 262 234 133 175 214 36 197 121 208 165 125 168 165 259 375 69 207 372 245 228 849 144 114 128 633 152 267 212 147 68 124 225 232 63 186 99 52 293 224 186 227 220 661 86 181 290 132 59 142 125 35 128 98 160 0 0 0 41 11 18 0 9 4 4 7 15 9 7 7 7 6 7 7 8 19 20 6 13 3 3 29 0 0 5 0 19 14 6 9 6 19 10 1 7 20 3 10 14 10 14 20 12 4 7 12 5 10 16 13 2 9 7 3 21 14 0 12 11 30 7 17 40 12 15 66 9 8 13 90 13 10 17 12 7 15 7 25 5 0 0 0 16 8 15 8 18 74 3 12 19 13 0 0 17 1 10 6 15 0 0 0 290 127 147 0 63 32 33 41 281 88 60 46 62 40 51 110 83 188 244 91 153 37 18 395 0 0 29 13 139 92 94 91 82 167 132 13 94 251 24 83 163 77 236 327 144 67 45 132 39 87 130 197 80 52 42 47 158 94 7 67 135 326 78 152 399 131 223 665 59 99 136 492 125 59 127 92 50 185 47 242 51 14 20 25 116 60 352 46 294 786 66 83 208 151 0 4 91 15 79 62 132 0 0 3 1543 764 423 12 182 79 89 128 574 131 156 91 360 120 149 254 292 451 609 180 290 132 137 1066 0 1 67 72 408 197 224 207 190 472 345 42 290 1224 72 251 330 237 540 615 214 251 160 268 227 460 349 782 124 317 137 68 400 252 16 364 244 1157 197 454 1177 464 647 2147 223 570 240 1698 296 422 484 224 139 509 267 681 114 45 38 35 402 164 486 243 598 2047 301 878 739 391 0 33 277 17 530 138 422 3987 246.salt-lake-city-02.ut.dial-access.att.net/12.64.69.246 3988 246.oalt-lake-city-02.ut.dial-access.att.net/12.64.69.246 64 69 24 6 3989 . . 246.salt-lake-city-02.ut.dial-access.att.net/12. 3990 ls.ca/207.172.52.117 207-172-52-117.s117.tnt1.hrd.eo 3991 auasc6-19.flash.net/208.194.194.19 3992 auasc6-19.flash.net/208.194.194.19 3993 3994 lCust97.tnt6.seal.da.uu.net/208.253.73.97 3995 16.los-angeles-22.ca.dial-access.att.net/12.64.180.16 7 3996 9 borge-179.infinitytx.net/204.254.148.1 3997 16.los-angeles-22.c.dial-access.att.net/12.64.180.16 7 3998 1Cust97.tnt6.seal.da.uu.net/208.253.73.9 3999 yckan019039.netvigator.cxW205.252.149.167 4000 ip126.chicagolo.il.p.ib-ip.psi.net/38.27.45.126 4001 pn144-22.dialip.mich.net/198.110.144.62 7 7 4002 .47.9 dip-80.nex-02.Clarion.csonline.net/209.13 7 4003 dip-80.nex-02.Clarion.csonline.net/209.137.47.9 4004 166-2-75.ipt.ol.ccV152.166.2.75 4005 d119-1002.rh.rit.edu/129.21.119.2 4006 dial1-6.tctc.<xan/205.243.39.6 4007 ttyCOf.kw.igs.net/206.248.55.143 4008 cor02-23.ppp.iadfw.net/206.66.7.88 4009 pn1a-65.richolnd.infi.net/205.219.233.65 4010 pn1-65.richTmnd.infi.net/205.219.233.65 4011 sasc5-231.tlash.net/209.30.90.231 4012 oaoc5-231.flash.net/209.30.90.231 7 88 4013 . oor02-23.ppp.iadfw.net/206.66. 4014 207.175.173.78/207.175.173.78 4015 207.175.173.78/207.175.173.78 4016 sasc5-231.flash.net/209.30.90.231 4017 ts4-07.rpt.cyberhighay.net/209.161.38.97 4018 p36-nex25.auck.ihug.co.nz/207.212.238.100 4019 dial-115-30.ots.utexas.edu/128.83.168.126 4020 lgdp167.eoni.a-n192.216.239.167 4021 p36-nox25.auck.ihug.3o.nz/207.212.238.100 4022 223.dallas-10.tx.dial-access.att.net/12.67.3.223 4023 lgdpop167.eoni.ccn/192.216.239.167 4024 pppO88.216.msherb.vidootron.net/207.96.216.88 4025 barrn6-23.caribsurf.com/205.214.193.23 4026 barp5-23.caribsurf.co/205.214.193.23 4027 barpn5--23.cariburf.crnV205.214.193.23 4028 dialup83-2-56.swipiet.se/130.244.83.120 4029 slip166-72-161-90.tx.us.in.net/166.72.161.90 4030 slipl66-72-161-90.tx.us.ihn.net/166.72.161.90 4 4031 24.charlotte-06.nc.dial-access.att.net/12.69.125.2 4032 olipl66-72-161-90.tx.us.ihn.net/166.72.161.90 6 4033 1-90.tx.u.iln.net/166.72.161.90 slip166-72-1 16 6 4034 slip -72-161-90.tx.us.ihn.net/166.72.161.90 4035 1ELO0f219201.rev.telstra-m.net.au/24.192.19.201 4036 4037 tsOO5dOl.pro-ri.concentric.net/206.83.81.109 4038 prp114.citi1ink.wV209.98.9.145 4039 ndhtpx03-port-17.agt.net/204.209.206.126 4040 rpn114.citilink.can/209.98.9.145 4041 ndhtpx03-port-17.agt.net/204.209.206.126 4042 ndhtpx03-port-17.agt.net/204.209.206.126 4043 7 4044 liv24-23.tor.idirect.canV207.136.93.8 4045 p31-nex6.well.ihug.co.nz/209.76.103.31 4046 port-27.IN3-1.globeca.net/195.100.210.217 4047 port-27.2I3-1.globea-an.net/195.100.210.217 3 7 3 4048 0.14.5 lfkn-&1as2-a7.lcc.net/207. 4049 port-27.EM3-1.globca.net/195.100.210.217 4050 zzecraig.dialin.uq.net.au/203.101.251.11 4051 port-27.m3-1.globecan.net/195.100.210.217 4052 zzecraig.dialin.uq.net.au/203.101.251.11 4053 port-27.I0-1.globecan.net/195.100.210.217 4054 zzecraig.dialin.uq.net.au/203.101.251.11 4055 odn-ts-004casjosP1.dialsprint.net/206.133.193.68 4056 zzecraig.dialin.uq.net.au/203.101.251.11 4057 port-27.H63-1.globecan.net/195.100.210.217 3 4058 pn343-34.dialip.mich.net/207.74.188.9 4059 pn343-34.dialip.mich.net/207.74.188.93 4060 p29.ta5.actca.co.il/192.115.23.139 4061 btr-lal-13.ix.netcan.can/205.184.10.45 4062 od-ppp-248.abac.net/208.137.255.148 4063 194.17.250.206/194.17.250.206 6 4 4064 .22 spc-isp-tor-uas-05-41.sprint.ca/209.5.1 4065 spc-isp-tor-uas-05-41.sprint.ca/209.5.16.242 4066 lost5-99-50-79.btinternet.noVl95.99.50.79 4067 hst5-99-50-79.btinternet.crnVl95.99.50.79 4068 spc-isp-tor-uas-05-41.sprint.ca/209.5.16.242 7 39 4069 .1 dialup107-9-11.swipet.se/130.244.10 4070 a4-p23.syd.fl.net.au/202.181.2.87 4071 199.212.46.151/199.212.46.151 4072 mc1-14.ilhamii.net/206.127.241.110 4073 rocl-14.ilhaii.net/206.127.241.110 4074 199.212.46.151/199.212.46.151 4075 DIAUPl.7BL.USIT.NEr/199.1.58.32 4076 rig-129-91.riq.qc.ca/199.84.129.91 4077 DIALUl.7NBUL.USIT.NET/199.1.58.32 4078 riq-129-91.riq.qc.ca/199.84.129.91 4079 riq-129-91.riq.qc.ca/199.84.129.91 4080 user-tre-501-60.dial.inet.fi/195.165.2.60 4081 user-tro-501-60.dial.inet.fi/195.165.2.60 4082 nichael.clark.net/168.143.3.91 4083 mdchael.clark.net/168.143.3.91 7 7 4084 .17.22.120 dialup7O.viconet.can/20 4085 dialup7O.vionet.can/207.17.227.120 4086 linel06.net-conect.net/206.160.145.106 4087 crn±206b.stny.lrun.canV204.210.137.157 33 4088 p -nux11.well.ihug.co.nz/209.78.48.33 4089 linelO6.net-coect.net/206.160.145.106 6 4090 line106.net-conect.net/206.160.145.10 GLOM:Information Agglomerates mp8578.on.bellglobal.ccm/207.236.125.2 arf-ca3-04.ix.netcan.cn/199.182.131.100 I114.citilink.caV209.98.9.145 134 date 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 time 8:37:17 AM 8:39:01AM 8:40:39AM 8:43:52AM 8:44:06AM 8:46:19AM 9:23:22AM 9:45:40AM 9:46:00AM 9:47:45AM 9:47:47AM 9:49:53AM 9:51:03AM 9:51:19AM 9:52:43AM 9:53:26AM 9:54:21AM 9:54:28AM 9:54:35AM 9:54:40AM 9:55:41AM 9:57:30AM 9:57:42AM 9:59:41AM 9:59:42AM 9:59:49AM 10:01:03AM 10:02:07AM 10:02:37AM 10:03:16AM 10:05:24AM 10:37:10 AM 10:40:51 AM AM 10:43:31 10:46:05 AM 10:50:30 AM 10:54:52 AM 11:04:00 AM AM 11:04:44 AM 11:08:35 AM 11:08:49 11:14:28 AM 11:17:53AM 11:18:02AM 11:18:53AM 11:20:04AM 11:21:12AM 11:21:25AM 11:22:25AM 11:24:01AM 11:24:51AM 11:33:55AM 11:44:14AM 11:45:58AM 11:57:36AM 12:00:03 12:08:4504 12:14:02 12:18:180M 12:25:260M 12:28:15 12:38:43R4 12:50:0024 12:53:302M 12:54:472M 2M 12:55:03 12:57:37 2M 1:03:352M 1:05:592M 1:06:222M 1:08:022M 1:08:552M 1:10:2324 1:12:49 1:16:442M 1:16:552M 1:21:3324 1:32:032M 1:34:0124 1:38:13EM 1:38:17 1:38:41 1:39:482M 1:41:022M 1:41:192M 1:42:022M 1:42:092M 1:42:49 EM 1:43:332M 1:44:242M 1:44:5824 1:45:562M 1:46:262M 1:49:582M 2:08:122M 2:09:142M 2:15:042M 2:17:022M 2:18:382M 2:20:212M 2:21:39 2:23:26 2:23:542M 2:29:51 M M M M M M M M M duration 84 385 186 176 156 129 102 138 81 89 95 111 129 57 68 79 80 45 194 88 162 172 100 22 93 114 185 40 160 117 149 258 90 81 295 174 218 46 135 186 3 159 72 41 45 57 385 345 127 98 204 395 126 86 223 94 109 443 556 98 155 168 289 123 271 357 85 148 38 161 107 274 225 370 200 111 221 113 221 141 132 100 50 149 9 28 43 baddies 7 43 0 8 14 4 5 14 3 7 9 10 5 4 8 1 7 0 7 0 15 18 0 1 9 8 2 0 5 15 14 22 0 13 7 10 9 0 1 19 0 10 1 0 1 1 27 27 4 6 12 34 6 9 15 1 11 23 28 7 11 12 28 0 25 21 8 9 0 9 6 16 20 5 11 12 19 4 6 8 11 8 6 12 0 6 6 500 32 0 500 150 12050 8600 4700 9700 7150 3850 5200 3100 4000 750 8800 8900 5550 0 62 42 113 212 156 226 737 127 161 109 80 45 301 169 145 79 2 0 15 19 10 19 13 7 12 6 9 1 17 15 15 0 score 4200 19150 250 3500 5950 2550 2350 5250 1550 3500 4050 4650 3000 1900 3750 450 3750 500 4000 0 7650 8000 100 600 4350 4700 700 0 2850 5600 8550 7500 100 3300 1950 4400 5200 0 400 5600 0 4750 650 150 750 650 10250 10750 2550 2900 5750 20250 3100 4100 7250 800 5200 10200 12250 3700 5000 4400 9200 250 8600 9200 4100 4550 0 3700 4950 4600 9550 1700 4500 6600 9900 1250 2750 4100 5050 2350 3450 4050 50 3900 1800 GLOM:Information Agglomerates hits 83 697 9 46 127 27 70 85 62 46 68 119 32 26 45 31 45 11 132 0 149 126 2 26 76 96 58 0 111 133 363 188 40 117 107 330 315 0 76 141 0 100 8 4 9 7 220 248 29 34 121 548 47 52 146 36 105 242 418 89 168 98 166 7 207 228 55 78 5 100 131 154 213 62 77 160 221 51 52 55 84 96 40 118 25 98 90 66 46 4 186 203 91 345 131 46 82 47 50 34 207 249 99 55 shots 186 1874 27 141 280 143 125 325 135 207 244 334 77 65 123 105 193 67 258 1 267 325 102 29 199 195 333 102 133 318 485 556 199 285 1290 731 1060 41 454 648 0 330 61 22 33 29 1794 1471 110 166 671 1730 142 155 358 52 213 784 816 291 835 847 1081 19 1055 530 133 131 18 205 203 375 604 193 232 665 453 215 107 144 228 339 179 495 32 126 142 105 54 12 468 566 213 706 758 141 302 146 132 90 383 584 587 62 ip address of player line106.net-onnect.net/206.160.145.106 p33-nax11.well.ihug.co.nz/209.78.48.33 net/208.205.39.55 usm-39-39.ano. 8 2 39 . 05. .55 usw39-39.wans.net/20 fctnts13c70.nlnet.nb.ca/207.179.148.172 usm-39-39.wans.net/208.205.39.55 dig01-19.i40.sotaoh.on/209.190.80.22 slip-32-100-115-112.ny.us.ihn.net/32.100.115.112 56K-100.MaxINrl.p&.net/209.144.226.100 56K-100.Max'I14l.pdq.net/209.144.226.100 slip-32-100-115-112.ny.us.ihn.net/32.100.115.112 slip-32-100-115-112.ny.us.ihn.net/32.100.115.112 ici-123-133.vsat.net/208.12.123.133 olip-32-100-18-223.ky.us.ih±n.net/32.100.18.223 slip-32-100-18-223.ky.us.ihn.net/32.100.18.223 intrepid-121.fuse.net/208.16.149.121 lineo106.net-connect.net/206.160.145.106 2 1.fuse.net/208.16.149.121 intrepid-1 ici-123-133.voat.net/208.12.123.133 128.113.70.95/128.113.70.95 8 23 .2 slip-32-100-18-223.ky.us.ihn.net/32.100.1 line106.net-onnect.net/206.160.145.106 slip-32-100-18-223.ky.us.ihn.net/32.100.18.223 ici-123-133.vsat.net/208.12.123.133 6 6 0.145.10 line106.net-connect.net/206.1 pn3-133.x31.infi.net/206.27.115.133 slip-32-100-18-223.ky.u.ihn.net/32.100.18.223 128.113.70.95/128.113.70.95 ici-123-133.vsat.net/208.12.123.133 slip-32-100-18-223.ky.u.ihm.net/32.100.18.223 33 ici-123-133.vsat.net/208.12.123.1 ip4.yorkr4.blazeet.net/24.104.7.4 nic-c08-149.nw.nediaone.net/24.131.8.149 slip-32-100-18-223.ky.us.ihn.net/32.100.18.223 nic-c08-149.nw.medione.net/24.131.8.149 nic-c08-149.nw.ediacne.net/24.131.8.149 nic-c08-149.nw.mediamne.net/24.131.8.149 128.113.70.95/128.113.70.95 nic-c8-149.nw.uediaone.net/24.131.8.149 128.113.70.95/128.113.70.95 128.113.70.95/128.113.70.95 7 .242 242.norristown-05.nj.dial-access.att.net/12.68.15 cliot9543.globalnet.co.uk/194.126.95.67 dia1097.netaccess.on.ca/199.243.225.225 client9543.globalnet.co.uk/194.126.95.67 client9543.globalnet.co.uk/194.126.95.677 .242 242.norristown-05.nj.dial-access.att.net/12.68.15 dialin-56.carmel.bestweb.net/209.94.104.90 cliot9543.globalnet.co.uk/194.126.95.67 cs2511-1-6.nds.nn.frontieet.net/209.130.165.212 7 242.norristo-05.nj.dial-access.att.net/12.68.15 242 68 7 .242 .15 . 242.orristown-05.nj.dial-access.att.net/12. 7 tctoriver689.adelphia.net/24.48.3.1 77 7 tcoriver689.adelphia.net/24.48.3.1 123.newark-03.nj.dial-access.att.net/12.68.34.123 2 203-32-152.ipt.aol.amn/152.203.32.15 204-45-117.ipt.aol.canul52.204.45.117 ts002d14.jac-nm.concnmtric.net/206.173.74.50 204-45-117.ipt.aol.can/'152.204.45.117 dialup2ll-2-5.swipiet.se/130.244.211.69 69 dialup211-2-5.swi;net.se/130.244.211. id# 4091 4092 4093 4094 4095 4096 4097 4098 4099 4100 4101 4102 4103 4104 4105 4106 4107 4108 4109 4110 4111 4112 4113 4114 4115 4116 4117 4118 4119 4120 4121 4122 4123 4124 4125 4126 4127 4128 4129 4130 4131 4132 4133 4134 4135 4136 4137 4138 4139 4140 4141 4142 4143 4144 4145 4146 4147 4148 4149 4150 4151 4152 4153 4154 4155 4156 4157 4158 4159 4160 4161 4162 4163 4164 4165 4166 4167 4168 4169 4170 4171 4172 4173 4174 4175 4176 4177 4178 4179 4180 4181 4182 4183 4184 4185 4186 4187 4188 4189 4190 4191 4192 4193 4194 srh0084.urh.uiuc.edu/130.126.208.93 198.99.179.2/198.99.179.2 windchiun-08.synapse.net/199.84.52.104 198.99.179.2/198.99.179.2 206.14.7.115/206.14.7.115 209.150.79.67/209.150.79.67 pn2-29.voil.cnV206.230.70.49 texsipd07.texhm.net/209.48.241.136 dial-241.hay.net/207.81.39.241 pn2-29. woil.cnr/206.230.70.49 usr35-dialup44.mix2.Atlanta.nci.net/166.55.59.172 dial-241.hay.net/207.81.39.241 tcrl-43.keee.nond.net/206.231.110.43 afon-dyn39.afcn.net/209.26.60.39 sergei-eisenstein.nedia.mit.edu/18.85.25.36 7 0.49 pn2-29.woil.ca206.230. 188.hartford-02.ct.dial-access.att.net/12.68.148.188 130.184.111.33/130.184.111.33 hlfxl5-11.ns. synpatio.ca/142.177.14.20 1Cust176.tntl.por2.da.uu.net/153.34.14.176 pc82.vash.kcls.org/198.104.18.22 pc82.vash.kcls.org/198.104.18.22 unet/153.34.14.176 1Custl76.tntl.por2.da.u pc82.vash.kcls.org/198.104.18.22 pc82.vash.kcls.org/198.104.18.22 1Cust176.tntl.por2.da.uu.net/153.34.14.176 8 .22 pc82.vash.kcls.org/198.104.1 :C001684.greek.uidaol.edu/129.101.136.184 bing7O2y.stny.1run.cun/204.210.143.76 pc82.vash.kcls.org/198.104.18.22 1Cust176.tnt1.por2.da.uu.net/153.34.14.176 PC001684.greek.uidaho.edu/129.101.136.184 7 6 1Cuist176.tntl.por2.da.uu.net/153.34.14.1 198.99.179.2/198.99.179.2 207.194.179.67/207.194.179.67 3 2 6 66 7 6 0 . . .11 crOl-1 .ppp.iadfw.net/ pool-207-205-151-72.dlls.grid.net/207.205.151.72 pool-207-205-151-72.dlls.grid.net/207.205.151.72 sdn-ts-002ilbellP10.dialsprint.net/206.133.107.45 cru01-16.gp.iadfw.net/206.66.7.113 7 Bdn-ts-002il1ellP10.dialsprint.net/206.133.10 7.45 2 pool-207-205-151-72.dlls.grid.net/207.205.151. pn3-31.boone.net/206.154.8.40 135 date 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 time 2:30:40 EM 2:31:08EM 2:32:20R4 2:33:49EM 2:35:51RM 2:37:46RM 2:42:03PM 2:42:25RM 2:43:49RM 2:45:41EM 2:50:35 2:51:47RI 2:53:36RM 2:53:52RM 2:56:52RM 2:57:22RI 2:58:09RM 2:59:01RM 2:59:21RM 3:02:23PM 3:02:34 3:03:04 3:04:22RM 3:08:02 3:10:06RM 3:10:54RM 3:11:42RM 3:12:50RM 3:13:33RM 3:15:21RI 3:16:03 3:17:28 3:17:34M 3:17:54 3:19:00RI 3:20:28RM 3:20:42RM 3:21:22RM 3:24:19R 3:24:33RM 3:28:14RI 3:28:30RI 3:33:04RM 3:33:52RM 3:35:05RM 3:39:09RI 3:39:18 3:43:25 3:46:31 3:48:05RM 3:48:22RI 3:49:36RM 3:51:47RM 3:54:43RM 3:54:46RM 3:57:09 3:57:41RM 3:59:49RM 4:07:04RM 4:12:58 FM 4:15:39 4:18:12 4:27:51RM 4:36:37RM 4:38:32RM 4:45:58 4:46:28RI 4:50:57RM 4:53:41RM 4:54:40RM 4:58:03RM 5:02:42RI 5:03:49RI 5:04:42RI 5:04:53RM 5:07:02RM 5:09:34RM 5:12:21RM 5:18:58RI 5:21:04RM 5:21:34RM 5:23:06RM 5:28:19RI 5:30±51RI 5:33:36RI 5:35:02 5:35:19RM 5:38:31RM 5:42:57RM 5:45:00RM 5:46:46RI 5:46:52RI 5:50:08RM 5:51:41 5:56:20RI 5:56:49RI 5:59:14RM 6:00:04RI 6:10:22 6:11:09RM 6:11:53RM 6:16:45RM 6:19:22RM 6:20:18RM M M M M M M M M M M M M M M M M M score 3750 3450 5500 750 21700 4900 5000 1300 1150 3250 6350 1550 4650 4350 2400 3450 5150 3300 3100 14250 4100 3500 3750 5150 7000 350 4950 650 4450 3350 4700 9850 5000 5200 5550 6750 6300 6400 0 9100 9150 250 9400 2700 9550 2750 1750 6850 4500 100 2950 4400 7950 7000 7150 0 1950 3000 10100 5150 5000 800 1350 3800 4100 4400 14250 2650 5800 0 4500 1300 4750 8850 5650 4550 5750 7400 4500 4900 0 6950 0 0 900 2800 5250 7500 0 1200 3500 2900 5750 7250 4200 0 2750 5950 0 50 100 2050 1250 2950 duration 111 61 84 95 265 99 117 74 93 98 325 57 151 177 83 147 363 209 133 494 229 226 167 283 151 50 80 48 94 130 134 377 126 95 69 139 87 146 132 229 204 87 195 115 185 142 209 240 105 13 48 75 185 128 587 222 105 112 293 266 148 118 75 79 89 153 335 113 249 36 102 270 162 220 138 176 130 97 226 370 48 226 102 38 146 215 181 175 11 96 91 162 175 269 161 14 128 236 4 22 16 77 50 195 GLOM:Information Agglomerates baddies 5 4 12 3 41 8 10 5 3 7 15 6 10 9 5 6 15 10 6 43 8 8 8 12 14 0 8 1 9 7 10 21 13 10 12 13 14 11 0 21 22 0 21 5 20 5 5 20 9 0 3 8 16 12 14 0 4 8 25 18 11 0 4 8 8 9 50 6 14 0 11 2 11 24 15 13 14 14 12 11 0 22 0 0 2 9 12 16 0 2 7 6 14 15 5 0 3 21 0 0 0 8 3 6 hits 94 90 130 45 449 187 86 46 47 61 138 56 87 51 46 41 130 105 43 356 59 46 46 68 115 8 72 19 53 48 78 228 160 68 184 101 199 259 0 170 174 10 159 30 190 42 57 147 58 29 211 121 338 361 151 0 195 269 244 149 87 21 48 46 46 65 289 35 111 0 123 22 117 163 98 141 152 144 114 69 0 183 0 5 18 118 94 126 0 17 40 117 150 168 125 17 80 181 0 25 31 86 21 35 shots 253 119 275 121 817 221 201 102 87 167 509 140 229 516 117 130 780 345 225 2006 303 603 143 396 216 14 144 43 158 392 217 574 817 199 404 191 562 413 5 454 385 55 364 116 355 205 200 891 175 33 257 178 931 689 425 9 426 430 681 1202 300 47 137 183 230 179 2109 233 300 1 228 249 571 678 325 734 397 249 1170 257 1 756 32 23 58 731 292 291 11 42 79 358 376 583 166 22 112 701 1 33 39 146 65 233 id# ip address of player 4195 207.106.138.2/207.106.138.2 4196 pn3-31.boone.net/206.154.8.40 4197 207.106.138.2/207.106.138.2 8 82 4198 .101. anilane.ne.nediaoe.net/24.12 6 4 8 4 4199 .15 . . 0 pn3--31.boone.net/20 4200 pn3-31.boone.net/206.154.8.40 4201 ncx3-156.netcologne.de/194.8.196.156 4202 207.106.138.2/207.106.138.2 3 37 4203 4. cs3-5.pot.ptd.net/204.186. 4204 cs3-5.pot.ptd.net/204.186.34.37 8 4205 4 pn±3-3-084.wizard.co/208.211.54. 4 84 8 4206 . .211.5 pn3-3-084.wizard.o-n/20 4207 ci.net/166.55.19.123 usr2-dia1up59.mix1.B1oaninton± 4208 ip185.van6.pacifier.can/206.163.4.185 4209 user-37kiEnc.dialup.mindspring.cCm207.69.222.196 4210 169-71-78.ipt.aol.cxrn/152.169.71.78 4 84 4211 . pn3-3-084.wizard.ccanV208.211.5 4212 dia145.stu.adelphia.net/24.48.26.45 6 4213 user-37khct.dialup.mindspring.canV207.69.222.19 8 4214 5 ip185.van6.pacifier.ccm/206.163.4.1 4215 pn3-3-084.wizard.can/208.211.54.84 4216 dial45.stu.adelphia.net/24.48.26.45 4217 GA-g5.resnet.erory.edu/170.140.88.5 4 84 4218 . p±n3-3-084.wizard.can/208.211.5 4219 171-183-186.ipt.aol.can/152.171.183.186 4220 ucpppl9.buffnet.net/207.41.194.124 86 7 83 4221 1.1 .1 171-183-186.ipt.aol.ccrV152.1 8 4222 .50 15pck9.Risn.O:xn/198.93.14 4223 171-183-186.ipt.aol.ccan/152.171.183.186 8 4224 1epck9.Rion.2/198.93.14 .50 86 4225 171-183-186.ipt.aol.can±/152.171.183.1 24 7 94 4226 .1 ucprp19.buffnet.net/20 48 8 93 .41.1 4227 1kpck9.Rien.02n/19 . .1 .50 4228 171-183-186.ipt.aol.can/152.171.183.186 4229 15pck9.Rien.c2n/198.93.148.50 4230 171-183-186.ipt.aol.caV152.171.183.186 4231 krpck9.Rien.c2n/198.93.148.50 4232 ucppl9.btuffnet.net/207.41.194.124 4233 hd50-023.hil.carpuserve.can199.174.230.23 86 7 4234 1.183.1 171-183-186.ipt.aol.can/152.1 4235 171-183-186.ipt.aol.canV152.171.183.186 4236 209.73.220.45/209.73.220.45 7 8 3 86 4237 1.1 .1 171-183-186.ipt.aol.can/152.1 4238 205.152.23.2/205.152.23.2 4239 171-183-186.ipt.aol.can/152.171.183.186 4240 ts3l-02.tor.istar.ca/204.191.149.193 27 2 4 7 4241 .90.1 . 9 dlp219.spring.eri.net/20 4242 ts31-02.tor.istar.c/204.191.149.193 4243 cs115316-a.sshel.sk.vmve.har.can24.64.103.183 4244 .m.can/24.64.103.183 cs115316-a.sshel.sk.mve 4245 nic-c08-149.nw.cnmdiaone.net/24.131.8.149 4246 cs115316-a.sshel.sk.mve.homocan24.64.103.183 4247 nic-c08-149.nw.nodiaone.net/24.131.8.149 4248 nic-c08-149.nw.ediaone.net/24.131.8.149 4249 anc-p23-117.alaska.net/209.112.140.117 4250 204.134.127.65/204.134.127.65 4251 nic-c08-149.nw.nediaone.net/24.131.8.149 49 4 4252 nic-c08-149.nw.mediaone.net/2 73 34 2.131.8.1 9 4253 .1 .135. und-as2p22.und.NoDak.eu/1 4254 usrt1n48.ipo1ine.<cxmn209.5.74.106 6 7 4255 usrtlnd8.ipoline.ccan/209.5. 4.10 92 4256 c1wkO1r01-10.betel.ca/209.52.1 77.10 4 6 4257 .9. h1fx04-37.ns.synpatico.ca/142.1 4258 Ascend18.web-ster.canV204.245.213.18 4259 Ascend18.we-ster.can/204.245.213.18 76 4260 cybem32d176.cg.vec.shaw.ca/24.64.32.1 7 2 4261 .20 .170 1Cstl70.tnt4.reclnd.a.da.u.net/153.3 3 4262 0.29 204-230-29.ipt.ol.can/152.204.2 4263 ppp-r1-dy-20.opr.oakland.ecd/141.210.14.181 67 7 2 7 4264 pool017-nx2.sc-ca--u.dialup.earthlink.net/20 9 .21 .145. 4265 . 10 210.seattle-04.m.dial-access.att.net/12.65.1 24 7 4 2 4266 . 1 2 ok3-11.ncmphis.edu/1 1. 225.2 2 4 23 4267 . 0 . 0. 9 204-230-29.ipt.aol.canVl5 4268 128.113.70.95/128.113.70.95 4269 166.55.224.228/166.55.224.2289 4270 204-230-29.ipt.aol.cc/152.204.230.2 49 92 2 6 9 4271 lgdgpp4 .eoni.can/V. 1 .239.1 8 4272 1 ip-100-181.c1d.prinet.ca/207.218.100.1 4273 204-230-29.ipt.aol.can/152.204.230.29 4 4 6 4274 pppl.poa1.presys.can/20 .100.16 .11 4275 AS52-21-23.cas-kit.goldmn.net/209.183.132.23 4276 204-230-29.ipt.aol.can/152.204.230.29 4277 pg2-30264.calab.unf.edu/139.62.192.218 4278 167-137-171.ipt.aol.can/152.167.137.171 69 4279 .125.141 141.charlotte-06.nc.dial-access.att.net/12. 4280 167-137-171.ipt.aol.canV152.167.137.171 4281 p07-tcl.act.net/167.114.24.232 3 4282 2 pp07-tcl.acnet.net/167.114.24.2 4283 port24.jxn.netdor.caV208.137.132.24 4284 port24.jm.netdoor.can/208.137.132.24 8 4285 .137.132.24 port24.jmc.netdoor.ccn20 4286 pppwl9.htc.net/208.165.192.19 4287 port24.jxn.netdbor.canV208.137.132.24 4288 pppwl9.htc.net/208.165.192.19 6 8 8 4289 .128 .159. PPP46.oonet.ca/20 9 65 4290 .15 .6 5 PPP46.oonet.ca/208.12 4291 5 PPP46.socnet.ca/208.128.159. 4292 208.new-york-28-29rs.ny.dial-accss.att.net/12.79.5.208 3 4 7 98 4293 .1 .8 P-198.83.Elhet.yu/194.2 4294 P-198.83.ELhet.yu/194.247.198.83 4295 P-198.83.Lhet.yu/194.247.198.83 4296 206.65.254.232/206.65.254.232 3 8 4 4297 . .95.10 wieladl-103.up.net/20 24 7 3 8 2 22 4298 .1 . usr-22.syr.axess.net/205. 136 id# date time score duration baddies hits shots ip address of player 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 6:20:34 EM 6:21:47EM 6:23:01EM 6:23:33 6:23:48EM 6:25:33FM 6:30:42EM 6:34:19EM 6:35:14FM 6:37:05EM 6:39:45EM 6:41:29EM 6:42:20EM 6:47:07EM 6:50:03EM 6:51:16EM 6:53:12EM 6:55:44EM 7:05:40EM 7:08:25EM 7:08:57EM 7:09:08EM 7:09:38EM 7:10:38 M 7:11:07EM 7:20:05EM 7:20:34EM 7:21:01EM 7:22:20EM 7:22:40EM 7:22:52EM 7:29:10EM 7:37:31EM 7:40:02EM 7:42:12EM 7:42:27EM 7:44:00EM 7:47:04EM 7:48:56EM 7:50:47EM 7:52:19EM 7:52:30EM 7:55:26EM 7:56:25EM 7:56:41EM 7:57:12EM 7:59:36EM 8:00:41EM 8:00:59EM 8:02:14EM 8:02:20EM 8:02:45EM 8:05:12EM 8:11:17EM 8:15:42EM 8:17:16EM 8:35:14EM 8:38:51EM 8:43:21EM 8:46:06EM 8:48:20EM 8:48:57EM 8:51:40EM 8:52:13EM 8:53:26EM 9:06:50EM 9:11:01EM 9±26:48EM 9:27:04EM 9:28:28EM 9:32:25EM 9:34:04EM 9:51:44EM 9:51:50EM 9:55±21EM EM 10±00:46 EM 10:01:23 EM 10:01:54 10:02:24EM EM 10:02:39 10:04:13EM 10:04:24EM 10:05:17EM 10:08:18 EM EM 10:10:50 EM 10:12:10 EM 10:15:22 10:19:12EM 10:21:41EM 10:22:15EM 10:22:27EM 10:26:27EM 10:30:24EM 10:31:15EM 10:35:13EM 10:37:17EM 10:40:09EM 10:41:46EM 10:45:01EM 10:45:51EM 10:47:17EM 10:47:40EM 10:48:05EM 10:48:55EM 4800 4300 0 2850 0 3900 5100 3700 4750 2800 4300 12700 2850 3050 3700 7500 7700 1450 1700 2050 1850 4750 1700 3500 5350 100 3750 3450 4550 5000 750 6650 600 650 0 18550 3750 3250 6450 3350 4950 3150 13650 3750 31100 3350 5100 1700 7700 7500 3850 2550 7200 1800 3150 3550 7600 7800 27250 5700 700 15900 8000 27100 7350 5050 650 1550 1900 950 1550 4900 1250 8200 2850 12350 1700 13400 3350 22050 3400 7800 9750 2400 4350 3400 3750 18600 3650 5250 13450 3500 1250 5500 7650 1000 4150 2400 2100 3950 3250 4700 4100 3850 207 129 199 230 4 174 292 246 253 94 145 353 189 217 194 231 240 136 136 63 118 123 75 117 98 29 199 39 208 75 234 389 166 51 192 879 186 161 295 94 117 2815 262 230 842 117 176 50 201 97 65 135 158 282 82 79 264 337 385 167 81 652 155 248 90 187 61 108 215 52 48 84 55 465 185 162 21 282 44 490 132 133 247 71 143 115 176 222 104 134 288 135 39 269 341 129 125 81 94 381 235 108 108 81 9 7 0 8 0 8 12 10 13 11 15 32 10 8 11 23 14 5 4 3 6 8 6 7 8 0 8 5 9 9 2 13 2 1 0 46 8 6 19 13 10 6 46 8 58 6 11 5 24 15 15 5 15 3 7 7 15 20 44 7 2 54 13 43 10 13 1 2 5 3 3 9 4 32 5 27 2 25 6 40 8 15 20 6 14 6 8 26 6 13 25 7 5 10 16 4 11 5 3 7 7 9 8 7 98 112 0 94 0 58 109 95 128 106 148 407 78 99 82 171 163 70 24 47 68 313 75 43 296 39 48 82 55 120 49 196 90 7 1 618 51 42 130 135 86 46 272 45 860 43 157 68 198 310 114 46 314 54 42 41 150 226 400 264 34 356 245 473 229 73 12 19 80 70 81 154 77 217 49 395 88 386 167 701 52 142 236 95 109 39 62 389 45 88 384 48 44 89 203 79 79 64 75 63 62 86 46 53 203 231 0 208 0 193 392 508 847 365 458 886 294 305 276 490 456 209 67 93 233 473 142 257 484 40 159 100 166 170 134 485 230 30 22 3904 225 104 1163 489 217 104 1831 345 4316 137 358 120 974 463 390 203 625 117 96 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209.44.36.36/209.44.36.36 2 4318 user-381&dmk.dialup.mindspring.cxns/209.86.162.21 4319 149.nations.net/209.194.92.149 4320 nic-c08-149.nw.mediaoe.net/24.131.8.149 4321 R0G106.rh.psu.edu/128.118.51.4 4322 user-381d&mk.dialup.mindspring.can/209.86.162.212 4323 nic-c08-149.nw.rediaone.net/24.131.8.149 4324 pc-12634.on.rogero.wave.ca/24.112.38.157 4325 noden-199.peterboro.net/205.206.219.199 4326 pc-12634.on.rogers.wave.ca/24.112.38.157 4327 171-41-185.ipt.aol.can/152.171.41.185 4328 pc-12634.on.rogers.wave.ca/24.112.38.157 4329 cc1009683-a.vronl.nj.hcme.can/24.3.145.77 4330 168-142-15.ipt.aol.cc/152.168.142.15 4331 ppp6440.on.bellglobal.ccm/206.172.208.32 4332 fre-76-121.Reshall.Berkeley.EDD/169.229.76.121 9 4333 port59.lightlink.ccm/205.232.34.15 4334 nexX15217.servers.unsw.EIf.AU/129.94.15.217 4335 hannptl-port-3.agt.net/198.161.155.141 4336 hannptl-port-3.agt.net/198.161.155.141 5 92 7 4337 .214.22. 2 7 2 14 2 4338 ppp-0 - - 52-92.psdn11.pacbell.net/207.214.252.92 2 4339 usr27-dialup1.mix1.Blocmington.ni.net/166.55. 5.129 4340 ascend-statewide-dialin350.esslink.ccm/204.252.96.166 7 2 2 2 2 07 2 14 25 2 4341 .214.5 .9 - - -92.pednll.pacbell.net/20 usr27-dialupl.mix1.Blocmington.mni.net/166.55.25.129 4342 4343 nexX15217.servrs.unsw.EJ.AU/129.94.15.217 4344 lust.oug.uyne.edu/141.217.24.246 4345 usr27-dialupl.mix1.Blocington.nci.net/166.55.25.129 4346 usr27-dialupl.mix1.Bloaington.nci.net/166.55.25.129 4347 sil-wa4-35.ix. netccmn.ccnV207.93.136.99 4348 nic-c08-149.nw.mediaone.net/24.131.8.149 4349 sil-±.a4-35.ix.netcn.ccm/207.93.136.99 4350 cgoave-26-204.ajocable.net/24.226.26.204 4351 nic-c08-149.nw.muediaone.net/24.131.8.149 4352 victoria.pe.net/207.49.166.2 4353 FUIDS15.MIT.EI/18.80.3.119 4354 FWIDS15.MIT.EIU/18.80.3.119 4355 207.98.63.38/207.98.63.38 4356 lCustl59.tnt13.det3.da.uu.net/208.254.241.159 4357 ci8506l-a.nashl.tn.hare.canV24.2.97.219 2 4358 29 nexx15229.servers.unsw.EIU.AU/129.94.15. 4359 208.13.22.202/208.13.22.202 4360 usr36-dialup3.mix2.Atlanta.nci.net/166.55.59.195 4361 ip42.van2.pacifier.can/206.163.4.42 4362 user-381cp7e.dlialup.mindspring.cam/209.86.100.238 4363 ip42.van2.pacifier.ccn/206.163.4.42 4364 rabit.greme.xtn.net/206.30.189.10 4365 dsle00398.adsl.telusplanet.net/209.115.144.142 7 4366 9.8.145 Dial-up145.nmnisp.ccm/207. 4367 bay1-94.quincy.ziplink.net/206.15.142.108 4368 bay1-94.quincy.ziplink.net/206.15.142.108 4369 202-176-93.ipt.aol.ccn/152.202.176.93 7 3 4370 6.9 202-176-93.ipt.ol.can/152.202.1 4371 144.baltior-02.nd.dial-access.att.net/12.68.115.144 4372 cdial-108.suite224.net/209.176.65.108 4373 utbp-245-015.p-net.buffalo.edu/128.205.245.15 4374 95.dallas-25.tx.dial-access.att.net/12.67.82.95 4375 95.dallas-25.tx.dial-acss.att.net/12.67.82.95 4376 116.san-frncisco-13.ca.dial-access.att.net/12.64.160.116 4377 95.dallas-25.tx.dial-acsos.att.net/12.67.82.95 61.san-francic-13.ca.dial-access.att.net/12.64.160.61 4378 4379 207.49.41.161/207.49.41.161 4380 116.san-francisoo-13.ca.dial-access.att.net/12.64.160.116 4381 4382 cybers144d45.nt.wave.shaw.ca/24.64.144.45 4383 tc22-249. 4384 198.189.70.224/198.189.70.224 4385 198.189.70.224/198.189.70.224 4386 cyber32d176.cg.wve.shaw.ca/24.64.32.176 4387 cybers32dl76.og.wave.shaw.ca/24.64.32.176 4388 slipl66-72-150-84.ca.us.ib±n.net/166.72.150.84 4389 world-f.std.ccm/199.172.62.5 4390 phx-ts18-22.goodnet.cxn/207.98.133.55 4391 SA5399-11-10.stic.net/207.71.50.240 4392 phx--tsl8-22.goodnet.ccia/207.98.133.55 4393 AS52-25-232.cso-kit.goldo±.net/209.183.132.232 4394 tor7-16.yesic.axn/209.167.2.136 4395 anc-p50-16.alaska.net/209.112.138.16 4396 anc-p50-16.alska.net/209.112.138.16 4397 anc-p5O-l6.alska.net/209.112.138.16 4398 207.150.39.132/207.150.39.132 4399 gen2-112ip163.cadvision.ccn/209.91.112.163 4400 SA5399-11-10.stic.net/207.71.50.240 4401 dyn120pp94.pacific.net.sg/210.24.120.94 4402 gen2-112ip163.cadvision.ccV209.91.112.163 M GLOM:Information Agglomerates gp-207-214-252-92.psdnll.pacbell.net/20 pM- mpp-5200-3539.nt1.total.net/207.139.1 mtelchile.net/206.84.69.249 137 date 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980509 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 time 10:51:01 2M 2M 10:51:12 R4 10:53:23 FM 10:55:23 11:01:06 11:04:54 R4 11:19:48 PM 11:23:02 R4 11:27:55 11:34:06 FM 11:36:25 11:37:42 11:39:16 11:48:562M 11:53:242M 11:54:042M 11:54:2724 11:56:482M 11:56:502M 11:59:16 11:59:17 11:59:402M 11:59:442M 12:02:24 AM 12:05:11 AM 12:08:37 12:09:06AM 12:22:21A14 12:22:50AM 12:24:42AM 12:27:41AM 12:27:580M 12:28:43814 12:32:23AM 12:33:45AM 12:36:36 AM AM 12:37:28 AM 12:37:54 014 12:40:04 AM 12:40:58 12:42:00 0M AM 12:43:24 12:44:000M 12:45:070M 12:47:27AM 12:47:57AM 12:50:21AM 12:50:258M 12:52:100M 12:52:280M 12:53:08AM 12:54:06AM 12:54:19AM 12:54:330M 12:55:44AM 12:57:32AM 12:58:47 1:00:360M 1:01:040M 1:08:38AM 1:22:0101 1:24:32014 1:24:54AM 1:27:00AM 1:28:35AM 1:29:42AM 1:31:1814 1:35:480M 1:39:10014 1:43:04AM 1:44:010M 2:10:19 AM 2:12:16 4 2:38:58014 2:44:440M 2:48:17AM 2:52:43AM 2:57:160M 3:18:24AM 3:20:45AM 3:25:100M 3:45:13AM 3:48:200M 3:50:290M 3:53:180M 3:55:150M 3:57:02A14 3:59:240M 4:28:430M 4:32:470M 4:34:45AM 4:37:430M 4:53:35AM 4:55:22AM 5:15:01014 5:15:290M AM 5:17:07 5:36:26 AM 5:41:50014 7:42:360M 7:45:45014 7:46:26 014 8:08:400M 8:12:23 M M M M M M M M M M score 4750 11450 150 8000 4850 7850 4900 4450 14300 7750 1250 0 2700 950 200 5850 800 3400 6650 9900 5650 1050 3650 8800 4050 4150 2600 0 5300 4600 1750 3400 950 5100 1400 12100 50 0 1750 13100 4000 7900 5600 7250 14100 5800 4750 1650 2500 3500 8250 1450 1050 2600 3200 6800 1450 11200 3500 16100 3200 0 0 9100 4100 6300 9850 12700 9550 4850 14250 6250 150 1150 5050 6100 3600 3050 2800 8250 3150 950 5350 3400 3600 4000 1800 4100 3300 6500 3150 7200 5000 3600 0 0 3350 11300 13450 3750 7450 7700 200 7950 duration 97 194 61 238 225 213 145 128 279 107 140 68 138 674 50 349 46 127 457 274 133 84 94 149 133 155 219 80 131 96 57 166 42 201 32 520 48 11 57 168 59 65 20 51 124 171 170 94 87 108 283 83 51 130 129 164 59 360 121 466 77 44 3 132 79 52 142 255 183 133 272 116 141 48 257 197 138 117 62 127 142 83 169 111 153 102 91 125 120 227 99 162 107 87 50 12 81 325 311 100 158 188 39 205 GLOM:Information Agglomerates baddies 9 19 0 17 11 16 10 10 30 12 5 0 8 3 0 13 1 5 19 20 11 1 7 14 9 9 10 0 10 10 6 13 2 13 2 21 0 0 2 24 5 11 8 12 26 17 10 4 4 7 20 5 3 4 10 21 3 24 7 39 5 0 0 15 5 9 18 26 15 9 19 12 0 2 14 17 8 5 5 19 8 1 13 7 8 7 3 8 6 12 7 13 8 6 0 0 4 21 26 8 15 15 0 17 player id# hits shots ip address of 71 306 27 176 118 187 155 95 349 186 62 0 60 47 5 126 24 83 216 281 138 55 102 204 57 61 89 6 88 85 63 117 14 94 18 355 29 22 42 349 138 249 125 275 415 123 60 95 26 43 317 87 110 47 126 180 69 431 40 582 38 44 0 291 109 162 261 357 255 91 464 111 25 17 145 127 95 40 37 152 86 20 75 60 48 50 18 57 52 138 73 135 94 37 55 17 139 296 358 50 151 168 11 173 115 898 94 1169 473 523 200 172 663 268 99 0 342 145 148 802 30 155 547 601 243 77 144 647 167 379 264 13 261 194 103 321 31 266 38 1419 34 30 60 684 270 507 155 400 777 668 228 339 375 166 657 185 197 616 526 1414 197 988 498 1870 117 46 0 488 372 264 645 1204 762 156 830 231 106 26 878 854 200 188 176 300 228 102 254 177 155 125 45 157 181 446 236 300 233 418 59 20 163 649 861 375 304 872 56 455 4403 user-381ca21.dialup.mindspring.ccan/209.86.40.65 7 4404 .71.50.240 sA5399-11-10.stic.net/20 4405 p124.rcia.cc/209.20.190.185 7 7 4 4406 . 1.50.20 SA5399-11-10.stic.net/20 4407 tntOl-96.n-link.o-/208.135.246.96 4408 tntOl-96.n-link.ccmV208.135.246.96 4409 dia112.eidnet.org/207.34.60.12 0 82 4410 . .152 s65.coslink.net/199.19 2 4411 o65.coslink.net/199.190.82.15 4412 rdialup12.tcinc.net/207.49.41.162 4413 c6p>172.ocaon.net/207.155.74.172 7 4 72 2 7 7 4414 c6pmp1 2.eccm.net/ 0 .155. .1 4415 207.245.249.63/207.245.249.63 4416 arh0378.urh.uiuc.edu/130.126.72.88 78 4417 168-109-78.ipt.ol.can/152.168.109. 8 4418 .206 d206.focal3.interaccess.can/207.208.13 4419 168-109-78.ipt.aol.ccm/152.168.109.78 4420 168-109-78.ipt.aol.ocrVl52.168.109.78 8 7 4421 arh0378.urh.uiuc.edu/130.126. 8 3 2 2. 8 2 7 4422 0 .16 . 1.9 ccc92.dclink.ca/ 78 4423 168-109-78.ipt.ol.o/152.168.109. 4424 dial-35-056.easystreet.crn206.103.35.56 4425 pn2-5-03.cyberspc.mb.ca/198.163.240.152 4426 dial-35-056.easystreet.co206.103.35.56 4427 cbv-43.c&v.ccs/207.124.188.143 4428 narket.pe.net/205.219.116.52 4429 1Cust164.tntl5.dfw5.da.uu.net/153.36.247.164 4430 200-106-157.ipt.ol.occ/152.200.106.157 2 3 23 8 4431 5. 3 8 logan238.blue.net/208.194. 4432 logan238.blue.net/208.194.235.2 2 3 4433 17 ts2l.rworld.ccn/206.230.95. 4434 167-120-45.ipt.ol.ccm/152.16 .120.45 4435 sea-ts4-p07.wolfenet.ccr/207.178.59.57 7 4436 sea-ts4-p07.wolfeet.xm/207.178.59.5 7 4437 ocntric.net/207.155.211.1 tsOOldO5.sag-mi. 2 3 3 4438 0.95.1 ts2l.orld.ccoV206.2 4439 lgvdiall5.tyler.net/208.134.148.15 4 4440 8.15 lgvdiall5.tyler.net/208.134.1 4441 24.128.50.18/24.128.50.18 4442 lgvdiall5.tyler.net/208.134.148.15 7 4443 hlst-209-214-72-121.atl-n.bellouth.net/209.214. 2 7 2.121 2 4444 14. .121 host-209-214-72-121.atl-n.bellsouth.net/209. 4445 host-209-214-72-121.atl-n.bellsouth.net/209.214.72.121 72 4446 7 .121 4447 2.121 host-209-214-72-121.atl-n.bellouth.net/209.214. 77 4448 alex-va-n008c167.noon.jic.ccm/206.156.18.1 4449 208.147.62.90/208.147.62.90 4 28 7 4450 .6. .ca.dial-acces.att.net/12.6 28.san-francisco-0 28.san-francisco-07.ca.dial-access.att.net/12.64.6.28 4451 4452 208.147.62.90/208.147.62.90 2 5 4453 1.11 zzecraig.dialin.uq.net.au/203.101. 4454 208.147.62.90/208.147.62.90 4455 zzecraig.dialin.uq.net.au/203.101.251.11 4 8 7 4456 28.san-franciso-0 .ca.dial-access.att.net/12.6 .6.2 4457 d206.focal3.interaccess.ccn/207.208.138.206 28 4458 -07.ca.dial-acces.att.net/12.64.6. 28.san-franciso 8 4459 28.oo-francisco-07.ca.dial-access.att.net/12.64.6.2 4460 zzecraig.dialin.uq.net.au/203.101.251.11 4461 28.san-francisco-07.ca.dial-acces.att.net/12.64.6.28 2 3 4462 .101.51.11 zzecraig.dialin.uq.net.au/20 7 00 4463 4.2 host47.analog.xroadstx.ccmV208.220. 4464 ad24-118.ar1.copuserve.cc/199.174.166.118 8 4465 207-172-62-118.s118.tnt2.mn.erols.cm/207.172.62.11 4466 ad24-118.ar1. cpuserve.om/V199.174.166.118 8 74 4467 ad24-118.arl.cxxpuere.can/199.1 7 .166.11 8 4468 4.166.11 ad24-118.arl.ccupuserve.cxn/l99.1 4469 zzecraig.dialin.uq.net.au/203.101.251.11 2 3 4470 0 .101.251.11 zzecraig.dialin.uq.net.au/ 4471 zzecraig.dialin.uq.net.au/203.101.251.11 4472 p25.pnl.van.integrityonline.ccn/205.238.28.25 3 4473 zzecraig.dialin.uq.net.au/20 .101.251.11 4474 ppp032.anet-st1.ccm/209.83.129.32 8 2 72 4475 .1 .20.195 172-208-195.ipt.aol.can/15 4476 sdcoe-ibl4.sdcoe.k12.ca.us/209.66.194.14 4477 user-381clsr.dialup.nindspring.ccs/209.86.87.155 8 7 4478 6.8 .155 user-381clsr.dialup.mindspring.caV209.7 2 4 4479 user-37kbo84.dialup.mnindspring.ccV20 .69.2 5. 4480 209.84.132.245/209.84.132.245 42 2 47 4481 tcnet00-58.austin.texas.net/209.99. 2 .2 47 4482 . tcnetOO-58.austin.texas.net/209.99.4 93 44 3 4483 .89. .swirnet.se/130.2 dialup89-6-1 97 2 89 4484 1.1 . nO001027.singnet.can.sg/165. 4485 no001027.singnet.ccm.sg/165.21.189.97 97 4486 nsO001027.singnet.cxx.sg/165.21.189. 97 2 4487 1.189.7 nsO001027.singnet.ccmn.sg/165. 4488 nsO001027.singnet.can.sg/165.21.189.9 4489 OO001027.singnet.cxx.sg/165.21.189.97 4490 OO001027.singnet.ccm.sg/165.21.189.97 4491 175.229.163 3 9 4492 .16 afdn12-163.sf.ccnpuserve.cxn/206.175.22 3 4493 sfdn12-163.sf.conpuserve.cc/206.175.229.16 22 9 3 4494 .16 7 sfdnl2-163.sf.cpapuserve.ccs/206.175. 4495 .38 a5-04-asy33.bey-ro-02.superonline.can/s195.33.21 4496 a5-04-asy33.bey-ro-02.superonline.cc/195.33.217.38 3 4497 .25.160.26 user23.argo.net.au/20 3 2 4498 user23.argo.net.au/20 .25.160. 6 4499 user23.argo.net.au/203.25.160.26 7 4500 sjoback.medkEn.gu.se/130.241. 6.95 4501 sjoback.oedkon.gu.se/130.241.76.95 7 4502 dlialup201-2-53.swiinet.se/130.244.201.11 4 2 4503 9 .139.25. diall8.hotline.net.au/20 7 4504 dialup201-2-53.swinet.se/130.244.201.11 7 4 4505 6.9 clam-246ppp97.epix.net/205.238.2 7 2 24 4506 05.238. 6.9 clam-246ppp97.epix.net/ ost-209-214-72-121.atl-n.bellsouth.net/209.214. sfdn12-163.sf.ocpnserve.cc/206. 138 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 980510 8:20:58 AM 8:21:13AM 8:59:38AM 9:02:16AM 9:15:15M 9:27:03AM 9:39:20AM 9:39:39AM 9:41:43AM 9:43:33AM 9:53:02AM 9:57:37AM 10:01:53 AM 10:04:22 AM 4650 5300 9050 2750 7650 2300 7550 14100 450 6000 11150 8900 1250 17600 164 146 241 162 338 121 980 459 19 94 303 260 64 389 GLOM:Information Agglomerates 7 10 22 5 23 3 17 25 0 13 24 20 2 33 258 100 209 41 174 158 144 406 33 121 388 200 14 489 949 255 416 207 928 366 407 863 39 343 938 510 28 1041 nic-c08-149.n.nediae.net/24.131.8.149 rpp13287.on.be11global.can/206.172.165.6 prn180-14.dialip.mich.net/198.108.246.24 43-pn-cltx.hinc.can/206. 54.161.243 dia116.hotline.net.au/202.139.25.47 nic-c08-149.nw.nediane.net/24.131.8.149 rdg-52t2-68.nveb.co.za/196.2.33.68 204.183.206.50/204.183.206.50 ns000925.singnet.ca.sg/165.21.189.35 ns00925.singnet.can.sg/165.21.189.35 2 3 6 5. 1.189.5 ns000925.singnet.a-m.sg/1 ns000925.singnet.om.sg/165.21.189.35 nbte13-166.nbtel.net/207.179.142.1663 5 ns000925.singnet.ca.sg/165.21.189. 4507 4508 4509 4510 4511 4512 4513 4514 4515 4516 4517 4518 4519 4520 139 8 Bibliography Alexander, C., S. 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