• DocumentCode
    3255880
  • Title

    Modeling Propagation Dynamics and Developing Optimized Countermeasures for Rumor Spreading in Online Social Networks

  • Author

    Zaobo He ; Zhipeng Cai ; Xiaoming Wang

  • Author_Institution
    Dept. of Comput. Sci., Georgia State Univ., Atlanta, GA, USA
  • fYear
    2015
  • fDate
    June 29 2015-July 2 2015
  • Firstpage
    205
  • Lastpage
    214
  • Abstract
    The spread of rumors in Online Social Networks (OSNs) poses great challenges to the social peace and public order. It is imperative to model propagation dynamics of rumors and develop corresponding countermeasures. Most of the existing works either overlook the heterogeneity of social networks or do not consider the cost of countermeasures. Motivated by these issues, this paper proposes a heterogeneous network based epidemic model that incorporates both the network heterogeneity and various countermeasures. Through analyzing the existence and stability of equilibrium solutions of the proposed ODE (Ordinary Differential Equation) system, the critical conditions that determine whether a rumor continuously propagates or becomes extinct are derived. Moreover, we concern about the cost of the main two types of countermeasures, i.e., Blocking rumors at influential users and spreading truth to clarify rumors. Employing the Pontryagin´s maximum principle, we obtain the optimized countermeasures that ensures a rumor can become extinct at the end of an expected time period with lowest cost. Both the critical conditions and the optimized countermeasures provide a real-time decision reference to restrain the rumor spreading. Experiments based on Digg2009 dataset are conducted to evaluate the effectiveness of the proposed dynamic model and the efficiency of the optimized countermeasures.
  • Keywords
    differential equations; maximum principle; real-time systems; social networking (online); Digg2009 dataset; ODE system; OSN; Pontryagin maximum principle; blocking rumors; epidemic model; heterogeneous network; modeling propagation dynamics; network heterogeneity; online social networks; ordinary differential equation system; public order; real-time decision reference; rumor spreading; social peace; spreading truth; Asymptotic stability; Differential equations; Mathematical model; Social network services; Stability analysis; Transforms;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Distributed Computing Systems (ICDCS), 2015 IEEE 35th International Conference on
  • Conference_Location
    Columbus, OH
  • ISSN
    1063-6927
  • Type

    conf

  • DOI
    10.1109/ICDCS.2015.29
  • Filename
    7164907