Signal processing in evoked potential research: applications of filtering and pattern recognition.

Critical reviews in bioengineering Pub Date : 1981-01-01
C D McGillem, J I Aunon, D G Childers
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Abstract

The separate but closely related topics of waveform estimation by filtering and information extraction by pattern recognition are covered in this review. Because of the low signal-to-noise ratio generally encountered in evoked potential research, a variety of filtering methods have been employed for improving waveform estimation. Initially the filtering was done with analog devices but with the availability of high performance minicomputers virtually all filtering is now done digitally. Filters of various types are considered. Among them are single and multiple channel Wiener filtering, Kalman filtering, minimum mean square error filtering, maximum signal-to-noise filtering, and several types of nonlinear filters. The application of adaptive filtering techniques is also considered. In recent years there has been a continual increase in the application of pattern recognition techniques to the processing of evoked potentials. The techniques are based on statistical decision theory and the underlying basis of these procedures is reviewed. The technique of linear stepwise discriminant analysis is considered as well as the use of general discriminant functions of linear and quadratic types. Applications of these procedures to psychophysiological testing are discussed with particular emphasis on auditory and visual event-related potentials.

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诱发电位研究中的信号处理:滤波和模式识别的应用。
通过滤波的波形估计和通过模式识别的信息提取这两个独立但密切相关的主题将在本文中讨论。由于诱发电位研究中普遍存在低信噪比的问题,因此采用了多种滤波方法来改善波形估计。最初的滤波是用模拟设备完成的,但随着高性能微型计算机的出现,几乎所有的滤波现在都是数字完成的。考虑了各种类型的过滤器。其中有单路和多路维纳滤波、卡尔曼滤波、最小均方误差滤波、最大信噪比滤波以及几种非线性滤波器。同时考虑了自适应滤波技术的应用。近年来,模式识别技术在诱发电位处理中的应用不断增加。这些技术是基于统计决策理论和这些程序的基本基础进行了审查。考虑了线性逐步判别分析技术以及线性和二次型一般判别函数的使用。讨论了这些程序在心理生理测试中的应用,特别强调了听觉和视觉事件相关电位。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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