• DocumentCode
    3743116
  • Title

    Designing virus-resistant networks: A game-formation approach

  • Author

    Stojan Trajanovski;Fernando A. Kuipers;Yezekael Hayel;Eitan Altman;Piet Van Mieghem

  • Author_Institution
    Delft University of Technology, The Netherlands
  • fYear
    2015
  • Firstpage
    294
  • Lastpage
    299
  • Abstract
    Forming, in a decentralized fashion, an optimal network topology while balancing multiple, possibly conflicting objectives like cost, high performance, security and resiliency to viruses is a challenging endeavor. In this paper, we take a game-formation approach to network design where each player, for instance an autonomous system in the Internet, aims to collectively minimize the cost of installing links, of protecting against viruses, and of assuring connectivity. In the game, minimizing virus risk as well as connectivity costs results in sparse graphs. We show that the Nash Equilibria are trees that, according to the Price of Anarchy (PoA), are close to the global optimum, while the worst-case Nash Equilibrium and the global optimum may significantly differ for small infection rate and link installation cost. Moreover, the types of trees, in both the Nash Equilibria and the optimal solution, depend on the virus infection rate, which provides new insights into how viruses spread: for high infection rate τ, the path graph is the worst- and the star graph is the best-case Nash Equilibrium. However, for small and intermediate values of τ, trees different from the path and star graphs may be optimal.
  • Keywords
    "Games","Nash equilibrium","Viruses (medical)","Network topology","Peer-to-peer computing","Stability analysis","Security"
  • Publisher
    ieee
  • Conference_Titel
    Decision and Control (CDC), 2015 IEEE 54th Annual Conference on
  • Type

    conf

  • DOI
    10.1109/CDC.2015.7402216
  • Filename
    7402216