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Optimal pairing of signal components separated by blind techniques

机译:通过盲法分离的信号分量的最佳配对

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In this letter, the problem of optimal pairing of signal components separated by blind techniques in different time-windows or in different frequency bins is addressed. The optimum pairing is defined as the one which minimizes the sum of some distances (criteria of dissimilarity) of the to-be-assigned signal components. It is shown that the optimal pairing can be achieved by the Kuhn-Munkres algorithm known in graph theory as a solution to the optimal assignment problem. An advantage of the proposed pairing method is shown on data from electroencephalogram, which are blindly separated using the FastICA algorithm in a sliding time-window with the aim to study the time evolution of elements of the estimated mixing matrix.
机译:在这封信中,解决了在不同的时间窗口或不同的频率仓中通过盲法分离的信号分量的最佳配对问题。最佳配对被定义为最小化待分配信号分量的某些距离之和(相异性标准)的配对。结果表明,最佳配对可以通过图论中作为最佳分配问题的解决方案的Kuhn-Munkres算法来实现。所提出的配对方法的一个优点在脑电图数据上显示出来,脑电图数据使用FastICA算法在滑动的时间窗口中盲目分离,目的是研究估计的混合矩阵元素的时间演化。

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