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Classification Procedure for Motor Imagery EEG Data

机译:运动图像脑电数据的分类程序

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摘要

Brain computer interface establishes a new model of communication, whereby it is possible to communicate using only cerebral signals, that can be obtained from different kind of cerebral stimuli. By the way, one of the most common stimulus is the motor imagery of the arms. However, since a set of variables leads to different levels of classification accuracy, it is necessary to search for procedures that can enhance the recognition accuracy of brain signals in order to create more precise systems. This paper proposes a classification procedure for discrimination of two motor imagery classes obtained using the Emotiv EPOC+ EEG signal acquisition device. The Emotiv EPOC+ has 14 input channels, but only four were used - the ones direcdy related with the capture of motor imagery signals. The presented procedure was created considering the MI common spatial pattern package from the Open Vibe software and the support vector machine (SVM) classification approach. As well, the procedure runs under the Open Vibe scenarios. A database with motor imagery signals from five subjects was built in order to perform the classification tests. In order to select the best features, several aspects from the signal acquisition until the classification process were analysed, such as selection of the best Kernel to SVM classifier, frequency band, filter output channels, and a grid-search to estimate the classifier parameters. At the end, an increase of 28,96% in the mean accuracy was achieved, regarding to the Open Vibe MI standard scenario.
机译:大脑计算机接口建立了一种新的交流模型,从而可以仅使用可以从不同种类的大脑刺激中获得的大脑信号进行交流。顺便说一句,最常见的刺激之一是手臂的运动图像。但是,由于一组变量导致不同级别的分类精度,因此有必要寻找可以增强脑信号识别精度的过程,以创建更精确的系统。本文提出了一种用于区分使用Emotiv EPOC + EEG信号采集设备获得的两个运动图像类别的分类程序。 Emotiv EPOC +具有14个输入通道,但仅使用了4个输入通道-直接与捕获运动图像信号有关。考虑到来自Open Vibe软件的MI通用空间模式包和支持向量机(SVM)分类方法,创建了提出的过程。同样,该过程在Open Vibe方案下运行。建立具有来自五个对象的运动图像信号的数据库,以执行分类测试。为了选择最佳功能,分析了从信号采集到分类过程的几个方面,例如,选择支持SVM的最佳内核分类器,频带,滤波器输出通道以及用于估计分类器参数的网格搜索。最后,相对于Open Vibe MI标准方案,平均准确度提高了28.96%。

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