IEEE Transactions on Vehicular Technology, ( ISI ), Year (2025-1)

Title : ( Reinforcement Learning-based Secure Communications over MIMO Interference Channels )

Authors: Mengqi Wang , Zhengmin Kong , Shenghao Liu , Tao Huang , Shihao Yan , Mohammad Allahbakhsh , Jinhong Yuan ,

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Abstract

This paper proposes a reinforcement learning-based precoding scheme with artificial noise to enhance secure communication in multi-input multi-output (MIMO) interference channel networks. The system consists of K transmitter-receiver pairs communicating while exposed to a multi-antenna eavesdropper under channel uncertainty. To address the secrecy rate maximization problem, which involves highly non-convex optimization due to power constraints and coupled variables, the problem is formulated as a Markov decision process (MDP) and solved using the deep deterministic policy gradient (DDPG) algorithm. Numerical results show that the proposed approach achieves comparable secrecy performance to the latest asynchronous distributed pricing-based scheme while significantly reducing the computational complexity.

Keywords

, Precoding, MIMO, Optimization, Noise, Wireless networks, Training, Uncertainty, Eavesdropping, Array signal processing, Vehicle dynamics
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@article{paperid:1105668,
author = {Lمنگی وانگ and ژنک مین کونگ and شنگ هاو لیو and تاو هوانگ and شی هاو یان and Allahbakhsh, Mohammad and جین هونگ یوان},
title = {Reinforcement Learning-based Secure Communications over MIMO Interference Channels},
journal = {IEEE Transactions on Vehicular Technology},
year = {2025},
month = {January},
issn = {0018-9545},
keywords = {Precoding; MIMO; Optimization; Noise; Wireless networks; Training; Uncertainty; Eavesdropping; Array signal processing; Vehicle dynamics},
}

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%0 Journal Article
%T Reinforcement Learning-based Secure Communications over MIMO Interference Channels
%A Lمنگی وانگ
%A ژنک مین کونگ
%A شنگ هاو لیو
%A تاو هوانگ
%A شی هاو یان
%A Allahbakhsh, Mohammad
%A جین هونگ یوان
%J IEEE Transactions on Vehicular Technology
%@ 0018-9545
%D 2025

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