Pilot Contamination Attack Detection in 5G Massive MIMO Systems Using Generative Adversarial Networks

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Reliable and high throughput communication in Massive Multiple-Input Multiple-Output (MIMO) systems strongly depends on accurate channel estimation at the Base Station (BS). However, the channel estimation process in massive MIMO systems is vulnerable to pilot contamination attacks, which not only degrade the efficiency of channel estimation, but also increase the probability of information leakage. In this paper, we propose a defence mechanism against pilot contamination attacks using a deep-learning model, namely Generative Adversarial Networks (GAN), to detect invalid uplink connections at the BS. Training of the models is performed via legitimate data, which consists of received signals from valid users and real channel matrices. The simulation results show that the proposed method is able to detect the pilot contamination attack with 98% accuracy in the best scenario.

Original languageEnglish
Title of host publication2021 IEEE International Mediterranean Conference on Communications and Networking, MeditCom 2021
PublisherInstitute of Electrical and Electronics Engineers Inc.
Pages479-484
Number of pages6
ISBN (Electronic)9781665445054
DOIs
Publication statusPublished - 1 Jan 2021
Event2021 IEEE International Mediterranean Conference on Communications and Networking, MeditCom 2021 - Athens, Greece
Duration: 7 Sept 202110 Sept 2021

Publication series

Name2021 IEEE International Mediterranean Conference on Communications and Networking, MeditCom 2021

Conference

Conference2021 IEEE International Mediterranean Conference on Communications and Networking, MeditCom 2021
Country/TerritoryGreece
CityAthens
Period7/09/2110/09/21

Keywords

  • Generative Adversarial Network
  • Massive MIMO
  • Network Security
  • Pilot Contamination Attack

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