Rate-Splitting Multiple Access for Multi-Antenna Joint Radar and Communications with Partial CSIT: Precoder Optimization and Link-Level Simulations
Rafael Cerna Loli, Onur Dizdar, Bruno Clerckx

TL;DR
This paper proposes a robust DFRC system using Rate-Splitting Multiple Access (RSMA) with partial CSIT, optimizing precoders for joint radar and communication performance, and validating through simulations.
Contribution
It introduces a novel RSMA-based precoder design for DFRC systems under partial CSIT, enhancing robustness and performance over existing strategies.
Findings
RSMA-based DFRC outperforms SDMA and NOMA strategies.
The common stream in RSMA enables flexible rate partitioning and effective radar beampattern formation.
Simulation results confirm RSMA's superiority in practical link-level scenarios.
Abstract
Dual-Functional Radar-Communication (DFRC) systems have been investigated to manage the inter-system interference between radar and communication systems. However, the studies in literature often assume that the DFRC possesses perfect Channel State Information at the Transmitter (CSIT), which is an unrealistic assumption due to the inevitable CSIT errors in practical deployments. In this work, we aim to design a DFRC system under the practical assumption of partial CSIT. To achieve this, the proposed DFRC marries the capabilities of a Multiple-Input Multiple-Output (MIMO) radar with Rate-Splitting Multiple Access (RSMA). RSMA is a powerful downlink communication scheme based on linearly precoded Rate-Splitting (RS) that partially decodes multi-user interference (MUI) and partially treats it as noise and is inherently robust to partial CSIT. Using RSMA, the DFRC precoders are optimized…
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Taxonomy
TopicsRadar Systems and Signal Processing · Full-Duplex Wireless Communications · PAPR reduction in OFDM
