Optimized Design for IRS-Assisted Integrated Sensing and Communication Systems in Clutter Environments
Chikun Liao, Feng Wang, and Vincent K. N. Lau

TL;DR
This paper proposes an optimized IRS-assisted integrated sensing and communication system design in clutter environments, enhancing sensing and communication performance through joint beamforming and phase shift optimization.
Contribution
It introduces a novel joint optimization framework for IRS-assisted ISAC systems considering Type-I and Type-II users, with an efficient algorithm for non-convex problem solving.
Findings
Significant gain over benchmark schemes in simulations.
Dedicated sensing signals improve performance for Type-I users.
IRS phase shifts and beamforming jointly optimize sensing and communication.
Abstract
In this paper, we investigate an intelligent reflecting surface (IRS)-assisted integrated sensing and communication (ISAC) system design in a clutter environment. Assisted by an IRS equipped with a uniform linear array (ULA), a multi-antenna base station (BS) is targeted for communicating with multiple communication users (CUs) and sensing multiple targets simultaneously. We consider the IRS-assisted ISAC design in the case with Type-I or Type-II CUs, where each Type-I and Type-II CU can and cannot cancel the interference from sensing signals, respectively. In particular, we aim to maximize the minimum sensing beampattern gain among multiple targets, by jointly optimizing the BS transmit beamforming vectors and the IRS phase shifting matrix, subject to the signal-to-interference-plus-noise ratio (SINR) constraint for each Type-I/Type-II CU, the interference power constraint per clutter,…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Satellite Communication Systems
