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Hybrid Beamforming for MU-MISO Communication via Deep Unfolding

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摘要 In hybrid beamforming design using the conventional gradient projection(GP)algorithm,it is common to use a fixed step size,which results in a slow convergence rate and unsatisfactory achievable rate performance.This paper employs a deep unfolding algorithm within a small fixed number of iterations to tackle the hybrid beamforming optimization problem.The optimal step size is obtained by combining the conventional GP algorithm with the deep learning technique,and every step in deep learning is explainable.Simulation results show that the proposed deep unfolding algorithm demonstrates a lower computational time and superior achievable rate performance than the conventional GP algorithm.
出处 《China Communications》 2026年第2期260-267,共8页 中国通信(英文版)
基金 STU Scientific Research Foundation for Talents under Grants NTF21048。
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