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A fast blind SIMO channel identification algorithm for sparse sources

机译:稀疏源的快速盲SIMO信道识别算法

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摘要

We address the blind identification of single-input-multiple output (SIMO) finite impulse response systems when the input signal is sparse. The problem is equivalent to underdetermined blind source separation (BSS), but with temporal correlation among the sources. Exploiting the sparse character of the input signal, the algorithm solves three different problems: first, to estimate the directions of the columns of the channel matrix; second, to estimate the L2-norm of the columns; and finally, to find the correct ordering of the columns of the mixing matrix. The last step is not required for the blind source separation (BSS) problem, since any permutation of the columns is admissible for BSS. The performance and computational cost of the algorithm in a noiseless situation is compared against subspace-based techniques.
机译:当输入信号稀疏时,我们解决了单输入多输出(SIMO)有限冲激响应系统的盲识别。该问题等效于不确定的盲源分离(BSS),但源之间存在时间相关性。利用输入信号的稀疏特性,该算法解决了三个不同的问题:第一,估计信道矩阵的列的方向;第二,估计信道矩阵的方向。其次,估计列的L2范数;最后,找到混合矩阵各列的正确顺序。盲源分离(BSS)问题不需要最后一步,因为BSS允许对列进行任何排列。将无噪声情况下算法的性能和计算成本与基于子空间的技术进行了比较。

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