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基于冗余空间投影的与个体手指运动相关的多通道脑皮层电图分类

Classification of multichannel ECoG related to individual finger movements with redundant spatial projections.

作者信息

Onaran Ibrahim, Ince N Firat, Cetin A Enis

机构信息

Department of Electrical and Electronics Engineering, Bilkent University, Ankara, Turkey.

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2011;2011:5424-7. doi: 10.1109/IEMBS.2011.6091341.

Abstract

We tackle the problem of classifying multichannel electrocorticogram (ECoG) related to individual finger movements for a brain machine interface (BMI). For this particular aim we applied a recently developed hierarchical spatial projection framework of neural activity for feature extraction from ECoG. The algorithm extends the binary common spatial patterns algorithm to multiclass problem by constructing a redundant set of spatial projections that are tuned for paired and group-wise discrimination of finger movements. The groupings were constructed by merging the data of adjacent fingers and contrasting them to the rest, such as the first two fingers (thumb and index) vs. the others (middle, ring and little). We applied this framework to the BCI competition IV ECoG data recorded from three subjects. We observed that the maximum classification accuracy was obtained from the gamma frequency band (65200 Hz). For this particular frequency range the average classification accuracy over three subjects was 86.3%. These results indicate that the redundant spatial projection framework can be used successfully in decoding finger movements from ECoG for BMI.

摘要

我们致力于解决用于脑机接口(BMI)的、与个体手指运动相关的多通道脑电信号(ECoG)分类问题。为实现这一特定目标,我们应用了一种最近开发的用于从ECoG中提取特征的神经活动分层空间投影框架。该算法通过构建一组冗余的空间投影,将二元公共空间模式算法扩展到多类问题,这些空间投影针对手指运动的配对和分组判别进行了调整。分组是通过合并相邻手指的数据并将其与其他手指的数据进行对比来构建的,例如将前两个手指(拇指和食指)与其他手指(中指、无名指和小指)进行对比。我们将此框架应用于从三名受试者记录的BCI竞赛IV ECoG数据。我们观察到,最大分类准确率是在伽马频段(65 - 200 Hz)获得的。对于这个特定的频率范围,三名受试者的平均分类准确率为86.3%。这些结果表明,冗余空间投影框架可以成功地用于从ECoG中解码手指运动以用于BMI。

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