Over-the-air Behavioral Modeling of Millimeter Wave Beamforming Transmitters with Concurrent Dynamic Configurations Utilizing Heterogenous Neural Network

H. Yin, Zhengbo Jiang, Xiaowei Zhu, Chao Yu
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引用次数: 3

Abstract

In this paper, a novel heterogenous neural network for over-the-air (OTA) behavioral modeling of millimeter-wave (mmW) beamforming transmitters with concurrent dynamic configurations is proposed. Different from conventional behavioral modeling methodology, the signal for model construction is obtained from the OTA measurement. By integrating concurrent dynamic configurations with transmitter input/output, the behaviors of enormous transmitter states can be accurately characterized by only one model, which is validated by experiments on a dual-channel mmW beamforming transmitter with 125 state combinations of concurrent dynamic configurations of input power, operating frequency and beam direction. Cross validation results indicate that proposed model can achieve great performance on both training and validation sets, which is very promising to be employed in 5G and future intelligent communication systems.
基于异构神经网络的毫米波波束成形发射机并发动态配置的空中行为建模
本文提出了一种新的异构神经网络,用于具有并发动态配置的毫米波波束成形发射机的空中(OTA)行为建模。与传统的行为建模方法不同,模型构建的信号来自于OTA测量。通过将并发动态配置与发射机输入/输出相结合,只需一个模型即可准确表征大量发射机状态的行为,并在具有125种输入功率、工作频率和波束方向并发动态配置组合的双通道毫米波波束成形发射机上进行了实验验证。交叉验证结果表明,该模型在训练集和验证集上均能取得较好的性能,在5G及未来的智能通信系统中具有较好的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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