Intelligent Reflecting Surface Based Localization of Mixed Near-Field and Far-Field Targets
Weifeng Zhu, Qipeng Wang, Shuowen Zhang, Boya Di, Liang, Liu, Yonina C. Eldar

TL;DR
This paper proposes an IRS-assisted localization method for near-field and far-field targets in 6G networks, using subspace algorithms to estimate target positions relative to the IRS even when LOS paths are blocked.
Contribution
It introduces a novel IRS-based localization approach employing MUSIC algorithm on virtual signals for near-field and far-field target detection in challenging scenarios.
Findings
Effective localization of targets using IRS in blocked LOS conditions
Accurate estimation of angles-of-arrival and ranges to targets
Theoretical proof of perfect state estimation in ideal conditions
Abstract
This paper considers an intelligent reflecting surface (IRS)-assisted bi-static localization architecture for the sixth-generation (6G) integrated sensing and communication (ISAC) network. The system consists of a transmit user, a receive base station (BS), an IRS, and multiple targets in either the far-field or near-field region of the IRS. In particular, we focus on the challenging scenario where the line-of-sight (LOS) paths between targets and the BS are blocked, such that the emitted orthogonal frequency division multiplexing (OFDM) signals from the user reach the BS merely via the user-target-IRS-BS path. Based on the signals received by the BS, our goal is to localize the targets by estimating their relative positions to the IRS, instead of to the BS. We show that subspace-based methods, such as the multiple signal classification (MUSIC) algorithm, can be applied onto the BS's…
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Taxonomy
TopicsIndoor and Outdoor Localization Technologies · Antenna Design and Optimization · Advanced Antenna and Metasurface Technologies
MethodsBalanced Selection · Focus
