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Direct blind MMSE channel equalization based on second-order statistics

机译:基于二阶统计量的直接盲MMSE信道均衡

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摘要

A family of new MMSE blind channel equalization algorithms based on second-order statistics are proposed. Instead of estimating the channel impulse response, we directly estimate the cross-correlation function needed in Wiener-Hopf filters. We develop several different schemes to estimate the cross-correlation vector, with which different Wiener filters are derived according to minimum mean square error (MMSE). Unlike many known sub-space methods, these equalization algorithms do not rely on signal and noise subspace separation and are consequently more robust to channel order estimation errors. Their implementation requires no adjustment for either single- or multiple-user systems. They can effectively equalize single-input multiple-output (SIMO) systems and can reduce the multiple-input multiple-output (MIMO) systems into a memoryless signal mixing system for source separation. The implementations of these algorithms on SIMO system are given, and simulation examples are provided to demonstrate their superior performance over some existing algorithms.
机译:提出了一种基于二阶统计量的新型MMSE盲信道均衡算法。代替估计信道脉冲响应,我们直接估计Wiener-Hopf滤波器中所需的互相关函数。我们开发了几种不同的方案来估计互相关矢量,并根据最小均方误差(MMSE)得出不同的维纳滤波器。与许多已知的子空间方法不同,这些均衡算法不依赖于信号和噪声子空间分离,因此对信道阶数估计误差更加鲁棒。它们的实施无需针对单用户或多用户系统进行调整。它们可以有效地均衡单输入多输出(SIMO)系统,并且可以将多输入多输出(MIMO)系统简化为用于源分离的无内存信号混合系统。给出了这些算法在SIMO系统上的实现,并提供了仿真示例,以证明它们优于某些现有算法。

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