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LMMSE-based interference mitigation method for compressive signal

机译:基于LMMSE的压缩信号干扰缓解方法

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摘要

Compressive sensing (CS) is a viable source of an innovative 5G system, what's more, it's an effective technology to deal with the data redundancy problem of massive machine-to-machine communication (MMC), since it enables the recovery of sparse and approximately sparse signals with significantly fewer samples than demanded by Nyquist-Shannon sampling theory. Interference in signal will lead a series problem to signal processing, which will be a recovery error proportional to the interference energy in CS. This paper tries to mitigate interference by proposing a compressive interference pre-filter based on linear minimal mean square error (LMMSE). The main contributions are that two practical estimation methods that based on autocorrelation function and auto-covariance function respectively, are applied to estimate the LMMSE-based filtering matrix. The estimation and pre-filter algorithms can be practically integrated into the compressive signal processing framework with improved robust property to noise and interference.
机译:压缩感测(CS)是创新5G系统的可行来源,而且,它是一种有效的技术,可解决大规模机对机通信(MMC)的数据冗余问题,因为它可以恢复稀疏和近似的数据比Nyquist-Shannon采样理论所要求的采样少得多的稀疏信号。信号干扰将导致信号处理出现一系列问题,这将是与CS中干扰能量成比例的恢复误差。本文试图通过提出一种基于线性最小均方误差(LMMSE)的压缩干扰预滤波器来减轻干扰。主要贡献在于,分别应用了基于自相关函数和自协方差函数的两种实用的估计方法来估计基于LMMSE的滤波矩阵。可以将估计和预滤波器算法实际集成到压缩信号处理框架中,以提高对噪声和干扰的鲁棒性。

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