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Multiclass motor imagery classification based on the correlation of pattern images generated by spatial filters

机译:基于空间滤波器生成的图案图像的相关性的多类运动图像分类

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This paper proposes a new motor imagery classification method. This method applies the Common Spatial Pattern (CSP) technique that projects Electroencephalography (EEG) filtered signals into a different time-space, where an optimal variance for discrimination of different motor imagery tasks is obtained. By using the training data set, RGB pattern images of each mental task are created through the features obtained by the CSP technique. Then the normalized cross-correlation coefficients of the RGB pattern images with the images representing the mental state of the user in a segment of two seconds are computed. The mean and variance values of the correlation coefficients and the obtained CSP features are used to train six binary Support Vector Machine classifiers, which discriminate between imagined left hand, right hand and foot movements and an idle state (a state without any imagery movement). The results show an average accuracy of 83.18% with the training data set and an 81.58% with the testing data set. These results demonstrate that the proposed method is competitive compared with existing methods and may represents a successful alternative for a multi-motor imagery classification.
机译:本文提出了一种新的运动图像分类方法。该方法应用了公共空间模式(CSP)技术,该技术将脑电图(EEG)滤波后的信号投影到不同的时空中,从而获得区分不同运动图像任务的最佳方差。通过使用训练数据集,通过CSP技术获得的功能可以创建每个心理任务的RGB模式图像。然后,计算出RGB图案图像与代表用户的精神状态的图像在两秒的时间段内的归一化互相关系数。相关系数的均值和方差值以及获得的CSP特征用于训练六个二进制支持向量机分类器,这些分类器可区分想象的左手,右手和脚动和空闲状态(无图像运动的状态)。结果显示,训练数据集的平均准确度为83.18 \%,测试数据集的平均准确度为81.58 \%。这些结果表明,与现有方法相比,所提出的方法具有竞争力,并且可以代表多电机图像分类的成功替代方法。

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