Intelligent Reflecting Surface Enabled Sensing: Cram\'er-Rao Bound Optimization
Xianxin Song, Jie Xu, Fan Liu, Tony Xiao Han, and Yonina C. Eldar

TL;DR
This paper explores IRS-assisted wireless sensing, deriving CRB expressions for target estimation, and proposes joint beamforming optimization to enhance sensing accuracy for both point and extended targets.
Contribution
It introduces a novel CRB-based joint beamforming design for IRS-enabled sensing, providing closed-form solutions and optimization algorithms for improved estimation accuracy.
Findings
CRB expressions derived for both target models.
Optimized beamforming reduces estimation error.
Numerical results confirm performance improvements.
Abstract
This paper investigates intelligent reflecting surface (IRS) enabled non-line-of-sight (NLoS) wireless sensing, in which an IRS is dedicatedly deployed to assist an access point (AP) to sense a target at its NLoS region. It is assumed that the AP is equipped with multiple antennas and the IRS is equipped with a uniform linear array. We consider two types of target models, namely the point and extended targets, for which the AP aims to estimate the target's direction-of-arrival (DoA) and the target response matrix with respect to the IRS, respectively, based on the echo signals from the AP-IRS-target-IRS-AP link. Under this setup, we jointly design the transmit beamforming at the AP and the reflective beamforming at the IRS to minimize the Cram\'er-Rao bound (CRB) on the estimation error. Towards this end, we first obtain the CRB expressions for the two target models in closed form. It…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Underwater Vehicles and Communication Systems · Indoor and Outdoor Localization Technologies
