Optimal Transmit Beamforming for Integrated Sensing and Communication
Haocheng Hua, Jie Xu, Tony Xiao Han

TL;DR
This paper develops optimal transmit beamforming strategies for integrated sensing and communication systems, maximizing radar performance while satisfying communication requirements, and demonstrates the benefits of interference cancellation capabilities.
Contribution
It introduces globally optimal beamforming solutions for ISAC systems considering different receiver types using SDR, with rigorous proofs of solution tightness and insights into radar signal necessity.
Findings
Type-II receivers outperform Type-I in sensing performance.
SDR-based solutions are globally optimal for the formulated problems.
Radar signals are unnecessary for Type-I receivers under certain conditions.
Abstract
This paper studies the transmit beamforming in a downlink integrated sensing and communication (ISAC) system, where a base station (BS) equipped with a uniform linear array (ULA) sends combined information-bearing and dedicated radar signals to simultaneously perform downlink multiuser communication and radar target sensing. Under this setup, we maximize the radar sensing performance (in terms of minimizing the beampattern matching errors or maximizing the minimum weighted beampattern gains), subject to the communication users' minimum signal-to-interference-plus-noise ratio (SINR) requirements and the BS's transmit power constraints. In particular, we consider two types of communication receivers, namely Type-I and Type-II receivers, which do not have and do have the capability of cancelling the interference from the {\emph{a-priori}} known dedicated radar signals, respectively. Under…
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Taxonomy
TopicsRadar Systems and Signal Processing · Microwave Imaging and Scattering Analysis · Full-Duplex Wireless Communications
