• DocumentCode
    3560816
  • Title

    The Effect of Eavesdroppers on Network Connectivity: A Secrecy Graph Approach

  • Author

    Goel, Shivani ; Aggarwal, V. ; Yener, A. ; Calderbank, A.R.

  • Author_Institution
    Wireless Commun. & Networking Lab., Pennsylvania State Univ., University Park, PA, USA
  • Volume
    6
  • Issue
    3
  • fYear
    2011
  • Firstpage
    712
  • Lastpage
    724
  • Abstract
    This paper investigates the effect of eavesdroppers on network connectivity, using a wiretap model and percolation theory. The wiretap model captures the effect of eavesdroppers on link security. A link exists between two nodes only if the secrecy capacity of that link is positive. Network connectivity is defined in a percolation sense, i.e., connectivity exists if an infinite connected component exists in the corresponding secrecy graph. We consider uncertainty in location of eavesdroppers, which is modeled directly at the network level as correlated failures in the secrecy graph. Our approach attempts to bridge the gap between physical layer security under uncertain channel state information and network level connectivity under secrecy constraints. For square and triangular lattice secrecy graphs, we obtain bounds on the percolation threshold, which is the critical value of the probability of occurrence of an eavesdropper, above which network connectivity does not exist. For Poisson secrecy graphs, degree distribution and mean value of upper and lower bounds on node degree are obtained. Further, inner and outer bounds on the achievable region for network connectivity are obtained. Both analytic and simulation results show that uncertainty in location of eavesdroppers has a dramatic effect on network connectivity in a secrecy graph.
  • Keywords
    computer network security; graph theory; lattice theory; network theory (graphs); probability; stochastic processes; Poisson secrecy graph; degree distribution; lattice secrecy graph; link security; network connectivity; percolation theory; physical layer security; uncertain channel state information; wiretap model; Electronic mail; Lattices; Security; USA Councils; Uncertainty; Upper bound; Connectivity; Poisson; eavesdropper; lattice; percolation; physical layer security; secrecy graph;
  • fLanguage
    English
  • Journal_Title
    Information Forensics and Security, IEEE Transactions on
  • Publisher
    ieee
  • Conference_Location
    5/2/2011 12:00:00 AM
  • ISSN
    1556-6013
  • Type

    jour

  • DOI
    10.1109/TIFS.2011.2148714
  • Filename
    5759739