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首页> 外文期刊>Medical and Biological Engineering and Computing: Journal of the International Federation for Medical and Biological Engineering >Multichannel wavelet-type decomposition of evoked potentials: model-based recognition of generator activity.
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Multichannel wavelet-type decomposition of evoked potentials: model-based recognition of generator activity.

机译:诱发电位的多通道小波类型分解:基于模型的发生器活动识别。

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摘要

Scalp recording of electrical events allows the evaluation of human cerebral function, but contributions of the specific brain structures generating the recorded activity are ambiguous. This problem is ill-posed and cannot be solved without physiological constraints based on the spatio-temporal characteristics of the generators' activity. In our model-based analysis of evoked potentials for the purpose of generator activity detection, multichannel scalp-recorded signals are decomposed into a combination of wavelets, each of which can describe the neural mass coherent activity of cell assemblies. Elimination of contributions of specific generators and/or distributed background activity can produce physiologically motivated time-frequency filtering. The decomposition and filtering procedures are demonstrated by three examples; simulation of the surface manifestation of known intracranial generators; decomposition and reconstruction of auditory brainstem evoked potentials which reflect the differences among generators of these potentials; and cognitive components of evoked potentials which are diminished in the averaged recording but are clearly detected in single-trial signals.
机译:头皮电事件的记录可以评估人的大脑功能,但是产生记录的活动的特定大脑结构的贡献却模棱两可。这个问题是不适当的,如果没有生理上的限制,就不能根据发电机活动的时空特性来解决。在我们基于模型的诱发电位分析中,为了进行发电机活动检测,将多通道头皮记录的信号分解为小波的组合,每个小波都可以描述细胞装配的神经质量相干活动。消除特定发生器的贡献和/或分布式背景活动可以产生生理动机的时频滤波。分解和过滤过程由以下三个示例演示:模拟已知颅内发生器的表面表现;听觉脑干诱发电位的分解和重建,反映了这些电位产生器之间的差异;和诱发电位的认知成分在平均记录中减少,但在单次试验信号中清楚地检测到。

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