Frequency Diverse Array-enabled RIS-aided Integrated Sensing and Communication
Hanyu Yang, Shiqi Gong, Heng Liu, Chengwen Xing, Nan Zhao, Dusit, Niyato

TL;DR
This paper introduces a novel FDA-enabled RIS-aided ISAC system that enhances sensing and communication by optimizing multiple parameters, demonstrating superior performance over traditional phased array systems in terms of sum rate and radar SCNR.
Contribution
It proposes a new FDA-RIS-aided ISAC framework, simplifies the optimization problem, and develops an efficient algorithm showing improved sensing and communication performance.
Findings
FDA-RIS system achieves higher SCNR than PA-RIS.
Radar signal is unnecessary for target sensing enhancement.
SCNR increases linearly with transmit power and antennas.
Abstract
Integrated sensing and communication (ISAC) has been envisioned as a prospective technology to enable ubiquitous sensing and communications in next-generation wireless networks. In contrast to existing works on reconfigurable intelligent surface (RIS) aided ISAC systems using conventional phased arrays (PAs), this paper investigates a frequency diverse array (FDA)-enabled RIS-aided ISAC system, where the FDA aims to provide a distance-angle-dependent beampattern to effectively suppress the clutter, and RIS is employed to establish high-quality links between the BS and users/target. We aim to maximize sum rate by jointly optimizing the BS transmit beamforming vectors, the covariance matrix of the dedicated radar signal, the RIS phase shift matrix, the FDA frequency offsets and the radar receive equalizer, while guaranteeing the required signal-to-clutter-plus-noise ratio (SCNR) of the…
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Taxonomy
TopicsIndoor and Outdoor Localization Technologies · Antenna Design and Optimization · Underwater Vehicles and Communication Systems
