RIS-Aided Near-Field Localization Under Phase-Dependent Amplitude Variations

被引:6
|
作者
Ozturk, Cuneyd [1 ]
Keskin, Musa Furkan [2 ]
Wymeersch, Henk [2 ]
Gezici, Sinan [3 ]
机构
[1] Northwestern Univ, Dept Elect & Comp Engn, Evanston, IL 60208 USA
[2] Chalmers Univ Technol, Dept Elect Engn, S-41296 Gothenburg, Sweden
[3] Bilkent Univ, Dept Elect & Elect Engn, TR-06800 Ankara, Turkiye
基金
欧盟地平线“2020”;
关键词
Index Terms-Localization; reconfigurable intelligent surfaces; hardware impairments; misspecified Cramer-Rao bound (MCRB); maximum likelihood estimator; Jacobi-Anger expansion; RECONFIGURABLE INTELLIGENT SURFACES; CHANNEL ESTIMATION; WIRELESS COMMUNICATIONS; MASSIVE MIMO; 6G SYSTEMS; OPPORTUNITIES; CHALLENGES; BOUNDS; MODEL; COMMUNICATION;
D O I
10.1109/TWC.2023.3235306
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
We investigate the problem of reconfigurable intelligent surface (RIS)-aided near-field localization of a user equipment (UE) served by a base station (BS) under phase-dependent amplitude variations at each RIS element. Through a misspecified Cramer-Rao bound (MCRB) analysis and a resulting lower bound (LB) on localization, we show that when the UE is unaware of amplitude variations (i.e., assumes unit-amplitude responses), severe performance penalties can arise, especially at high signal-to-noise ratios (SNRs). Leveraging Jacobi-Anger expansion to decouple range-azimuth-elevation dimensions, we develop a low-complexity approximated mismatched maximum likelihood (AMML) estimator, which is asymptotically tight to the LB. To mitigate performance loss due to model mismatch, we propose to jointly estimate the UE location and the RIS amplitude model parameters. The corresponding Cramer-Rao bound (CRB) is derived, as well as an iterative refinement algorithm, which employs the AMML method as a subroutine and alternatingly updates individual parameters of the RIS amplitude model. Simulation results indicate fast convergence and performance close to the CRB. The proposed method can successfully recover the performance loss of the AMML under a wide range of RIS parameters and effectively calibrate the RIS amplitude model online with the help of a user that has an a-priori unknown location.
引用
收藏
页码:5550 / 5566
页数:17
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