Joint Communications and Sensing Hybrid Beamforming Design via Deep Unfolding
Nhan Thanh Nguyen, Ly V. Nguyen, Nir Shlezinger, Yonina C. Eldar, A., Lee Swindlehurst, Markku Juntti

TL;DR
This paper introduces a deep unfolding approach for hybrid beamforming in joint communications and sensing systems, significantly improving convergence speed and performance tradeoffs over traditional methods.
Contribution
It develops a deep unfolded projected gradient ascent method that enhances hybrid beamforming design for JCAS by leveraging data-driven hyperparameter tuning and interpretability.
Findings
Achieves up to 33.5% higher sum rate in communications.
Reduces beampattern error by 2.5 dB.
Cuts computational complexity by 65%.
Abstract
Joint communications and sensing (JCAS) is envisioned as a key feature in future wireless communications networks. In massive MIMO-JCAS systems, hybrid beamforming (HBF) is typically employed to achieve satisfactory beamforming gains with reasonable hardware cost and power consumption. Due to the coupling of the analog and digital precoders in HBF and the dual objective in JCAS, JCAS-HBF design problems are very challenging and usually require highly complex algorithms. In this paper, we propose a fast HBF design for JCAS based on deep unfolding to optimize a tradeoff between the communications rate and sensing accuracy. We first derive closed-form expressions for the gradients of the communications and sensing objectives with respect to the precoders and demonstrate that the magnitudes of the gradients pertaining to the analog precoder are typically smaller than those associated with…
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Taxonomy
TopicsAntenna Design and Optimization · Indoor and Outdoor Localization Technologies · Antenna Design and Analysis
