Adaptive Learning for IRS-Assisted Wireless Networks: Securing Opportunistic Communications Against Byzantine Eavesdroppers
Amirhossein Taherpour, Abbas Taherpour, and Tamer Khattab

TL;DR
This paper introduces a joint learning framework for secure IRS-assisted wireless networks that enhances Byzantine-resilient spectrum sensing and optimizes transmission strategies under CSI uncertainty, improving security and performance.
Contribution
It develops a novel Byzantine-resilient sensing method combined with joint optimization of IRS and transmission, including algorithms for both known and unknown CSI scenarios.
Findings
Higher detection probability under adversarial attacks
Significant reduction in sum MSE for honest users
Effective suppression of eavesdropper signals
Abstract
We propose a joint learning framework for Byzantine-resilient spectrum sensing and secure intelligent reflecting surface (IRS)--assisted opportunistic access under channel state information (CSI) uncertainty. The sensing stage performs logit-domain Bayesian updates with trimmed aggregation and attention-weighted consensus, and the base station (BS) fuses network beliefs with a conservative minimum rule, preserving detection accuracy under a bounded number of Byzantine users. Conditioned on the sensing outcome, we pose downlink design as sum mean-squared error (MSE) minimization under transmit-power and signal-leakage constraints and jointly optimize the BS precoder, IRS phase shifts, and user equalizers. With partial (or known) CSI, we develop an augmented-Lagrangian alternating algorithm with projected updates and provide provable sublinear convergence, with accelerated rates under…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Wireless Communication Security Techniques · Underwater Vehicles and Communication Systems
