Codebook Design and Performance Analysis for Wideband Beamforming in Terahertz Communications
Boyu Ning, Weidong Mei, Lipeng Zhu, Zhi Chen, Rui Zhang

TL;DR
This paper introduces a novel wideband codebook design for THz communications that mitigates beam squint effects, optimizing beamforming gains across frequency and space, and demonstrates superior performance over traditional narrowband methods.
Contribution
The paper proposes a new wideband beamforming codebook design method using a novel metric and optimization techniques, addressing the beam squint issue in wideband THz systems.
Findings
Proposed codebook outperforms narrowband codebooks in simulations.
The new metric effectively characterizes wideband beamforming performance.
Optimization algorithms efficiently solve the codebook design problem.
Abstract
The codebook-based analog beamforming is appealing for future terahertz (THz) communications since it can generate high-gain directional beams with low-cost phase shifters via low-complexity beam training. However, conventional beamforming codebook design based on array response vectors for narrowband communications may suffer from severe performance loss in wideband systems due to the ``beam squint" effect over frequency. To tackle this issue, we propose in this paper a new codebook design method for analog beamforming in wideband THz systems. In particular, to characterize the analog beamforming performance in wideband systems, we propose a new metric termed wideband beam gain, which is given by the minimum beamforming gain over the entire frequency band given a target angle. Based on this metric, a wideband analog beamforming codebook design problem is formulated for optimally…
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Taxonomy
TopicsMicrowave Engineering and Waveguides · Antenna Design and Optimization · Millimeter-Wave Propagation and Modeling
MethodsSparse Evolutionary Training
