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诱发电位的加权平均

Weighted averaging of evoked potentials.

作者信息

Davila C E, Mobin M S

机构信息

Department of Electrical Engineering, Southern Methodist University, Dallas, TX 75275.

出版信息

IEEE Trans Biomed Eng. 1992 Apr;39(4):338-45. doi: 10.1109/10.126606.

Abstract

Weighted averages of brain evoked potentials (EP's) are obtained by weighting each single EP sweep prior to averaging. These weights are shown to maximize the signal-to-noise ratio (SNR) of the resulting average if they satisfy a generalized eigenvalue problem involving the correlation matrices of the underlying signal and noise components. The signal and noise correlation matrices are difficult to estimate and the solution of the generalized eigenvalue problem is often computationally impractical for real-time processing. Correspondingly, a number of simplifying assumptions about the signal and noise correlation matrices are made which allow an efficient method of approximating the maximum SNR weights. Experimental results are given using actual auditory EP data which demonstrate that the resulting weighted average has estimated SNR's that are up to 21% greater than the conventional ensemble average SNR.

摘要

脑诱发电位(EP)的加权平均值是通过在平均之前对每个单个EP扫描进行加权来获得的。如果这些权重满足一个涉及基础信号和噪声成分相关矩阵的广义特征值问题,那么它们将使所得平均值的信噪比(SNR)最大化。信号和噪声相关矩阵难以估计,并且广义特征值问题的解对于实时处理而言通常在计算上不切实际。相应地,对信号和噪声相关矩阵做出了一些简化假设,这使得能够采用一种有效方法来近似最大SNR权重。使用实际听觉EP数据给出了实验结果,这些结果表明所得加权平均值的估计SNR比传统总体平均SNR高出多达21%。

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