Adaptive Self-Interference Cancellation for Full Duplex Systems with Auxiliary Receiver

Maggie Shammaa, Hendrik Vogt, A. El-Mahdy, A. Sezgin
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引用次数: 1

Abstract

Full-duplex communication promises to double the spectral efficiency over half-duplex communication. The main obstacle in the use of full-duplex in signal transmission is the self-interference. In this paper, we propose a system model where a copy of the transmitted signal is obtained by an auxiliary receiver and afterwards subtracted from the signal at the ordinary receiver in the same User Equipment. This requires the knowledge of the correlation in between the channels of the two receivers. We propose to use a Kalman filter for channel estimation, which is derived to estimate the correlated channels of both receivers in the presence of two types of noise. The first one is the additive Gaussian noise, while the second one is the transceiver noise which results from impurities of the transmitter and receiver components. This scenario allows for a more comprehensive analysis of self-interference cancellation. We utilize the bit error rate of the transmission to study its performance in the cases of perfect channel state information, Kalman filter channel estimation and Least Square Estimation (LSE). It is shown that, the bit error rate when using Kalman filter is lower than when using LSE. The combination of using a Kalman filter as the channel estimator together with an auxiliary receiver also enhances the data rate.
带辅助接收机的全双工系统自适应自干扰消除
全双工通信的频谱效率是半双工通信的两倍。在信号传输中使用全双工的主要障碍是自干扰。在本文中,我们提出了一种系统模型,其中由辅助接收器获得发射信号的副本,然后从同一用户设备中的普通接收器的信号中减去。这需要了解两个接收机信道之间的相关性。我们建议使用卡尔曼滤波器进行信道估计,该滤波器可以在存在两种噪声的情况下估计两个接收机的相关信道。第一个噪声是加性高斯噪声,第二个噪声是收发器噪声,是由收发器组件的杂质引起的。这种情况允许对自干扰消除进行更全面的分析。我们利用误码率来研究在完全信道状态信息、卡尔曼滤波信道估计和最小二乘估计(LSE)情况下的传输性能。结果表明,使用卡尔曼滤波时的误码率低于使用LSE时的误码率。利用卡尔曼滤波器作为信道估计器与辅助接收机相结合也提高了数据速率。
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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