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Secrecy Rate Maximization for Intelligent Reflecting Surface Assisted Multi-Antenna Communications

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arxiv 1905.10075 v1 pith:X7AFHP6F submitted 2019-05-24 cs.IT math.IT

classification cs.ITmath.IT
keywords algorithmassisteddesignintelligentmulti-antennaphaseproposedrate
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We investigate transmission optimization for intelligent reflecting surface (IRS) assisted multi-antenna systems from the physical-layer security perspective. The design goal is to maximize the system secrecy rate subject to the source transmit power constraint and the unit modulus constraints imposed on phase shifts at the IRS. To solve this complicated non-convex problem, we develop an efficient alternating algorithm where the solutions to the transmit covariance of the source and the phase shift matrix of the IRS are achieved in closed form and semi-closed forms, respectively. The convergence of the proposed algorithm is guaranteed theoretically. Simulations results validate the performance advantage of the proposed optimized design.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Secure Transmission Strategy for Intelligent Reflecting Surface Enhanced Wireless System

    cs.IT 2019-09 conditional novelty 4.0 of 10

    For rank-one base station to reflecting surface channels, the optimal secrecy beamforming is the channel-matched vector, and phase design reduces to a hard quadratic problem solved by SDP or gradient methods.

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