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Next Generation Network Science: An Overview Michael Kearns and Ali Jadbabaie University of Pennsylvania Kick-off Meeting, July 28, 2008 ONR MURI: NexGeNetSci Team Members Dave Alderson Brian Stickler Jean Carlson Naval Postgraduate School UC Santa Barbara Michael Kearns (PI) Ali Jadbabaie Shawndra Hill University of Pennsylvania John Doyle Babak Hassibi Caltech Fan Chung Graham UC San Diego ONR MURI: NexGeNetSci Good news: Spectacular progress Bad news: • Persistent errors and confusion • Potentially insurmountable obstacles? ONR MURI: NexGeNetSci Challenges in the NS report: 1. Dynamics, spatial location, and information propagation in networks. 2. Modeling and analysis of very large networks. 3. Design and synthesis of networks. 4. Increasing the level of rigor and mathematical structure. 5. Abstracting common concepts across fields. 6. Better experiments and measurements of network structure. 7. Robustness and security of networks. ONR MURI: NexGeNetSci Challenges Goals Abstraction (common concepts across fields) Rigor (& math structure) Issues • Dynamics (location, propagation) • Robustness (& security) Levels of understanding 0. 1. 2. 3. 4. Verbal Data & statistics (Experiments & measurements) Modeling & simulation Analysis Design & synthesis ONR MURI: NexGeNetSci Theory and the Internet Goals • Abstraction • Rigor Issues • Dynamics • Robustness Good news: Spectacular progress Levels 0. Verbal 1. Data & stats 2. Modeling & sim 3. Analysis 4. Design & synth Topics: • Traffic • Topology • Control and dynamics (C&D) • Layering/distributed • Architecture ONR MURI: NexGeNetSci Huge and recent progress Traffic Topology C&D Verbal Data/stat Mod/sim Analysis Synthesis ONR MURI: NexGeNetSci Architect Layering ure Addressing challenges project thrusts vs. Challenges Modeling Analysis Design and Synthesis Experiments ONR MURI: NexGeNetSci Network of Investigators Alderson Carlson Doyle Steckler ChungGraham Kearns Hassibi Hill Jadbabaie Watts ONR MURI: NexGeNetSci Thrust 1: Novel Algorithms • Local, Distributed graph Algorithms (Chung-Graham, Jadbabaie) – Graph algorithms for partitioning • Understanding role of Randomness , and Random graph models (Chung-Graham, Doyle, Carlson) – Beyond degree distributions • Matching and re-identification, data mining (Hill) – Efficient scoring and identity matching ONR MURI: NexGeNetSci Thrust 2: Dynamics on Networks and Network Models • Analysis and design of interconnected dynamical systems over networks, distributed optimization (Jadbabaie, Doyle, Hassibi) – Global behaviors translated to local decisions – Interplay of interconnection and dynamics • Network formation games (Alderson, Kearns) • New Models of Networks (Jadbabaie) – From Graphs to Simplicial Complexes ONR MURI: NexGeNetSci Thrust 3:Architecture • Comparative Physiology of Network Architecture (Alderson, Doyle, Carlson) – – • From Internet to biology Robustness, fragility and evolvability of complex networks Optimization , Layering, and games (Jadbabaie, Doyle, Alderson, Kearns) – Layering as a tool for optimization decomposition ONR MURI: NexGeNetSci Thrust 4:Network Information theory • Entropic Vectors: New tool for network information theory (Hassibi) – Entropic vectors and convex optimization • Fundamental limits in network information theory (Doyle, Hassibi) – Connecting fundamental limits due to information, computation, and dynamics ONR MURI: NexGeNetSci Thrust 5: Behavioral Network Science • Behavioral and Mathematical models for collective problem-solving (Kearns) • Collective problem solving vs. distributed optimization (Kearns, Jadbabaie) ONR MURI: NexGeNetSci Thrust 6:Testbeds and Demonstrations • Hastily Formed Networks (Steckler, Alderson) – Analysis of Field exercise data • Measurement and statistics of field operations ONR MURI: NexGeNetSci