CNN-based Algorithm for Joint Channel and Phase Noise Estimation in OFDM Relay Systems

Fábio D. L. Coutinho, Hugerles S. Silva, P. Georgieva, Arnaldo S. R. Oliveira
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Abstract

In this paper, it is proposed a convolutional neural network (CNN)-based algorithm for joint estimation of the channel and phase noise in orthogonal frequency-division multiplexing (OFDM) relay systems. Due to the time-varying nature of the oscillator phase noise in higher frequency bands, this impairment can no longer be treated as additive white gaussian noise leading to the deterioration in the overall performance of wireless communication systems. Thus, jointly with the channel frequency response, the proposed algorithm infers the intercarrier interference in the received baseband signal introduced by the phase noise of the transmitter and receiver oscillators. The impact of the number of cascaded channels between the source and the destination of the relay system is also studied. The proposed CNN-based approach has the potential to deal with the challenging phase noise problem, which is still an open issue for the cascaded channels. The obtained results show that due to the relevant intercarrier interference mitigation, the CNN-based approach outperforms the least square practical estimation and presents a considerable improvement in the bit error rate (BER). To the best of author’s knowledge, this is the first work that unifies the relay cascaded channel and phase noise estimation in the frequency domain using a CNN-based algorithm.
基于cnn的OFDM中继系统联合信道和相位噪声估计算法
本文提出了一种基于卷积神经网络(CNN)的正交频分复用(OFDM)中继系统信道和相位噪声联合估计算法。由于振荡器相位噪声在较高频段的时变特性,这种损害不能再被视为加性高斯白噪声,从而导致无线通信系统整体性能的恶化。因此,该算法结合信道频率响应,推断出接收基带信号中由收发振荡器的相位噪声引入的载波间干扰。研究了中继系统源端和目的端间级联信道数的影响。所提出的基于cnn的方法有潜力处理具有挑战性的相位噪声问题,这仍然是级联信道的一个开放问题。结果表明,由于相关的载波间干扰抑制,基于cnn的方法优于最小二乘实用估计,并且在误码率(BER)方面有很大改善。据作者所知,这是第一个使用基于cnn的算法在频域统一中继级联信道和相位噪声估计的工作。
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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