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薄膜式肌梭内纤维电极记录的肌梭传入神经放电的锋电位分类。

Spike sorting of muscle spindle afferent nerve activity recorded with thin-film intrafascicular electrodes.

机构信息

Vision Institute, 17 rue Moreau, 75012 Paris, France.

出版信息

Comput Intell Neurosci. 2010;2010:836346. doi: 10.1155/2010/836346. Epub 2010 Mar 30.

Abstract

Afferent muscle spindle activity in response to passive muscle stretch was recorded in vivo using thin-film longitudinal intrafascicular electrodes. A neural spike detection and classification scheme was developed for the purpose of separating activity of primary and secondary muscle spindle afferents. The algorithm is based on the multiscale continuous wavelet transform using complex wavelets. The detection scheme outperforms the commonly used threshold detection, especially with recordings having low signal-to-noise ratio. Results of classification of units indicate that the developed classifier is able to isolate activity having linear relationship with muscle length, which is a step towards online model-based estimation of muscle length that can be used in a closed-loop functional electrical stimulation system with natural sensory feedback.

摘要

使用薄膜纵向纤维内电极在体记录了被动肌肉拉伸时的传入肌梭活动。为了分离初级和次级肌梭传入纤维的活动,开发了一种神经峰检测和分类方案。该算法基于使用复小波的多尺度连续小波变换。与常用的阈值检测相比,该检测方案具有更好的性能,特别是在具有低信噪比的记录中。单元分类的结果表明,所开发的分类器能够分离与肌肉长度呈线性关系的活动,这是朝着基于模型的肌肉长度在线估计迈出的一步,该估计可用于具有自然感觉反馈的闭环功能性电刺激系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7064/2847763/7bb1167611c4/CIN2010-836346.001.jpg

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