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An Energy-Based Load Balancing Scheme for Secure Computation Offloading in Cell-Free Massive MIMO Systems

  • Yu Yan
  • , Yan Huo*
  • , Qinghe Gao
  • , Yingzhen Wu
  • , Tao Jing
  • , Jian Mao
  • *Corresponding author for this work
  • Beijing Jiaotong University
  • Tianmushan Laboratory
  • Zhongguancun Laboratory

Research output: Contribution to journalArticlepeer-review

Abstract

In light of the decentralized architecture inherent in cell-free massive multiple-input-multiple-output (MIMO)-enabled mobile edge computing networks, a novel computational task offloading scheme, denoted as Joint Security and Energy-based Load Balancing (JSEON), is proposed. Distinguished from existing studies of only combating passive eavesdropper, two different schemes are integrated to combat the eavesdropper for passive eavesdropping in uplink offloaded task transmission and pilot contamination attack (PCA) in downlink post-data transmission. In an endeavor to refine the portrayal of load-balancing effectiveness within access points equipped with independent edge servers (AP-ES), a novel performance metric termed the energy-based load imbalance degree (e-LoBaR) is introduced. Additionally, this study unveils a pioneering security and energy-based load-balancing (SEAGOING) algorithm, which concurrently optimizes the matching relationships between user equipment (UE) and AP-ESs, the task offloading ratio, and the jamming strategy to verify the effectiveness of proposed JSEON scheme, which can enhance security in a more load-balanced manner. Simulation results show that the proposed algorithm effectively mitigates eavesdropping threats in both uplink and downlink transmissions while improving AP-ES load balancing compared to benchmark schemes.

Original languageEnglish
Pages (from-to)9781-9797
Number of pages17
JournalIEEE Transactions on Communications
Volume73
Issue number10
DOIs
StatePublished - 2025

Keywords

  • Access point selection
  • active pilot contamination attack
  • cell-free massive MIMO
  • computation offloading
  • physical layer security

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