A Study on the Effect of Phase Shifter Quantization Error on the Spectral Efficiency Using Neural Network

Reza Ghazalian, Sahar Golipoor
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引用次数: 0

Abstract

Beamforming (BF) is the inevitable component of the recent communication systems, especially Millimeter wave (mmWave) systems. Thanks to the radio frequency (RF) and digital technologies, BF techniques are implemented in the both digital and analogue domains by using phase shifters (PS) networks. Adopting the digital PS, which has the finite resolution bits, leads to loss in the spectral efficiency (SE). Accordingly, in this paper, we extract the SE loss in a multi-user multiple inputs single output (MISO) system, which would be useful for practical prospective. To this end, we apply machine learning (ML) to extract the SE loss. Simulation results show that the extracted models have the desirable accuracy in the SE loss prediction.
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用神经网络研究移相器量化误差对频谱效率的影响
波束形成(BF)是现代通信系统,尤其是毫米波系统不可避免的组成部分。得益于射频(RF)和数字技术,BF技术通过移相器(PS)网络在数字和模拟领域都得以实现。采用有限分辨率的数字PS会导致频谱效率(SE)的损失。因此,本文提取了多用户多输入单输出(MISO)系统中的SE损失,具有一定的实际应用前景。为此,我们应用机器学习(ML)来提取SE损失。仿真结果表明,所提取的模型具有较好的SE损失预测精度。
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