Game-Theoretic Modeling of Backscatter Wireless Sensor Networks under Smart Interference

  • Seung Gwan Hong
  • , Yu Min Hwang
  • , Sun Yui Lee
  • , Yoan Shin
  • , Dong In Kim
  • , Jin Young Kim

Research output: Contribution to journalArticlepeer-review

11 Scopus citations

Abstract

In this letter, we study an interference avoidance scenario in the presence of a smart interferer, which can rapidly observe the transmit power of a backscatter wireless sensor network (WSN) and effectively interrupt backscatter signals. We consider a power control with a sub-channel allocation to avoid interference attacks and a time-switching ratio for backscattering and RF energy harvesting in backscatter WSNs. We formulate the problem based on a Stackelberg game theory and compute the optimal parameters to maximize a utility function against the smart interference. We propose two algorithms for the utility maximization using Lagrangian dual decomposition for the backscatter WSN and the smart interference to prove the existence of the Stackelberg equilibrium. Numerical results show that the proposed algorithms effectively maximize the utility, compared to that of the algorithm based on the Nash game, so as to overcome smart interference in backscatter communications.

Original languageEnglish
Pages (from-to)804-807
Number of pages4
JournalIEEE Communications Letters
Volume22
Issue number4
DOIs
StatePublished - Apr 2018

Keywords

  • Backscatter communications
  • smart interference
  • Stackelberg game
  • wireless sensor networks

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