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      Resilient and Decentralized Control of Multi-level Cooperative Mobile Networks to Maintain Connectivity under Adversarial Environment

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          Abstract

          Network connectivity plays an important role in the information exchange between different agents in the multi-level networks. In this paper, we establish a game-theoretic framework to capture the uncoordinated nature of the decision-making at different layers of the multi-level networks. Specifically, we design a decentralized algorithm that aims to maximize the algebraic connectivity of the global network iteratively. In addition, we show that the designed algorithm converges to a Nash equilibrium asymptotically and yields an equilibrium network. To study the network resiliency, we introduce three adversarial attack models and characterize their worst-case impacts on the network performance. Case studies based on a two-layer mobile robotic network are used to corroborate the effectiveness and resiliency of the proposed algorithm and show the interdependency between different layers of the network during the recovery processes.

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          Author and article information

          Journal
          2015-05-26
          2016-03-16
          Article
          1505.07158
          c89ccadf-9919-4109-9c50-af94f6e182bf

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          9 pages, 6 figures
          cs.SY cs.DC cs.RO

          Performance, Systems & Control,Robotics,Networking & Internet architecture
          Performance, Systems & Control, Robotics, Networking & Internet architecture

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