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On a whitening approach to partial channel estimation and blind equalization of FIR/IIR multiple-input multiple-output channels

机译:FIR / IIR多输入多输出信道的局部信道估计和盲均衡的白化方法

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Channel estimation and blind equalization of multiple-input multiple-output (MIMO) communications channels is considered using primarily the second-order statistics of the data. Such models arise when a single receiver data from multiple sources is fractionally sampled (assuming that there is excess bandwidth) or when an antenna array is used with or without fractional sampling. We consider estimation of (partial) channel impulse response and design of finite-length minimum mean-square error (MMSE) blind equalizers. The basis of the approach is the design of a zero-forcing equalizer that whitens the noise-free data. We allow infinite impulse response (IIR) channels. Moreover, the multichannel transfer function need not be column reduced. Our approaches also work when the "subchannel" transfer functions have common zeros as long as the common zeros are minimum-phase zeros. The channel length or model orders need not be known. The sources are recovered up to a unitary mixing matrix and are further "unmixed" using higher order statistics of the data. A linear prediction approach is also considered under the above conditions of possibly IIR channels, common subchannel zeros/factors, and not-necessarily column reduced channels. Four illustrative simulation examples are provided.
机译:主要使用数据的二阶统计量来考虑多输入多输出(MIMO)通信信道的信道估计和盲均衡。当对来自多个源的单个接收器数据进行部分采样(假设存在多余带宽)时,或者使用天线阵列进行或不进行部分采样时,就会出现这种模型。我们考虑(部分)信道冲激响应的估计和有限长度最小均方误差(MMSE)盲均衡器的设计。该方法的基础是迫零均衡器的设计,该均衡器可使无噪声数据变白。我们允许无限冲激响应(IIR)通道。此外,不必减少多通道传递函数的列。当“子通道”传递函数具有公共零时,只要公共零是最小相位零,我们的方法也适用。通道长度或型号顺序不需要知道。将源恢复到统一的混合矩阵,然后使用数据的更高阶统计量进一步“取消混合”。在可能的IIR信道,公共子信道零/因数以及不必要的列减少的信道的上述条件下,还考虑了线性预测方法。提供了四个说明性的仿真示例。

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