3D Multi-Target Localization Via Intelligent Reflecting Surface: Protocol and Analysis
Meng Hua, Guangji Chen, Kaitao Meng, Shaodan Ma, Chau Yuen, Hing, Cheung So

TL;DR
This paper introduces a novel two-stage protocol for 3D multi-target localization using multiple IRSs, deriving fundamental bounds and estimators, and demonstrates sub-meter accuracy through simulations.
Contribution
The paper proposes a new two-stage localization protocol with DoA estimation and multi-IRS control, advancing IRS-based sensing capabilities for 3D multi-target localization.
Findings
CRB and DoA estimators for IRS-off and IRS-on stages
Multi-beam IRS is necessary for sensing accuracy
Achieves sub-meter-level localization accuracy
Abstract
With the emerging environment-aware applications, ubiquitous sensing is expected to play a key role in future networks. In this paper, we study a 3-dimensional (3D) multi-target localization system where multiple intelligent reflecting surfaces (IRSs) are applied to create virtual line-of-sight (LoS) links that bypass the base station (BS) and targets. To fully unveil the fundamental limit of IRS for sensing, we first study a single-target-single-IRS case and propose a novel \textit{two-stage localization protocol} by controlling the on/off state of IRS. To be specific, in the IRS-off stage, we derive the Cram\'{e}r-Rao bound (CRB) of the azimuth/elevation direction-of-arrival (DoA) of the BS-target link and design a DoA estimator based on the MUSIC algorithm. In the IRS-on stage, the CRB of the azimuth/elevation DoA of the IRS-target link is derived and a simple DoA estimator based on…
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Taxonomy
TopicsUnderwater Vehicles and Communication Systems · Indoor and Outdoor Localization Technologies · Advanced Wireless Communication Technologies
