Robust IRS-Element Activation for Energy Efficiency Optimization in IRS-Assisted Communication Systems With Imperfect CSI

被引:0
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作者
Efrem C.N. [1 ]
Krikidis I. [1 ]
机构
[1] Department of Electrical and Computer Engineering, University of Cyprus, Nicosia
关键词
approximation algorithm; Complexity theory; continuous/discrete phase shifts; convex relaxation; dynamic programming; energy efficiency; Europe; global optimization; imperfect CSI; Intelligent reflecting surface; IRS-element activation; Optimization; Receivers; robust discrete optimization; Signal to noise ratio; Vectors; Wireless communication;
D O I
10.1109/TWC.2024.3413022
中图分类号
学科分类号
摘要
In this paper, we study an intelligent reflecting surface (IRS)-aided communication system with single-antenna transmitter and receiver, under imperfect channel state information (CSI). More specifically, we deal with the robust selection of binary (on/off) states of the IRS elements in order to maximize the worst-case energy efficiency (EE), given a bounded CSI uncertainty, while satisfying a minimum signal-to-noise ratio (SNR). In addition, we consider not only continuous but also discrete IRS phase shifts. First, we derive closed-form expressions of the worst-case SNRs, and then formulate the robust (discrete) optimization problems for each case. In the case of continuous phase shifts, we design a dynamic programming (DP) algorithm that is theoretically guaranteed to achieve the global maximum with polynomial complexity <italic>O</italic>(<italic>L</italic> log <italic>L</italic>), where <italic>L</italic> is the number of IRS elements. In the case of discrete phase shifts, we develop a convex-relaxation-based method (CRBM) to obtain a feasible (sub-optimal) solution in polynomial time <italic>O</italic>(<italic>L</italic>3.5), with a posteriori performance guarantee. Furthermore, numerical simulations provide useful insights and confirm the theoretical results. In particular, the proposed algorithms are several orders of magnitude faster than the exhaustive search when <italic>L</italic> is large, thus being highly scalable and suitable for practical applications. Moreover, both algorithms outperform a baseline scheme, namely, the activation of all IRS elements. IEEE
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