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A critical comparison between SVM and k-SVM in the classification of Kriya Yoga meditation state-allied EEG

机译:SVM和k-SVM在Kriya瑜伽冥想状态脑电分类中的关键比较

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Support vector machines (SVM) have become a gold standard method for the classification of brain signals. However, for highly nonlinear and non-stationary signals like Electroencephalography (EEG), conventional SVM is not sufficient to classify the different brain states associated with different cognitive activity. Brain state classification is a challenging task when using standard SVM. Thus, a Kernel-based SVM (k-SVM) has been undertaken in the present study for classification between non-meditation (controlled group) and meditation based EEG. The k-SVM is popularly known as a non-linear classifier. In the present work, a comparative study has been taken up to classify the resting brain state associated with Kriya Yoga meditation practice using SVM and Kernel-SVM (k-SVM). The EEG signals have been captured from ten non-meditators (control group) and 23 meditators group. The results of both SVM and k-SVM have been shown and compared in both the groups. Additionally, the average classification accuracy has been found to be 85.543% for SVM and 90.8259% for k-SVM. The obtained results show that the kernel-based SVM surpassed the conventional SVM in classifying the meditation and non-meditation allied EEG.
机译:支持向量机(SVM)已成为分类脑信号的金标准方法。但是,对于脑电图(EEG)等高度非线性和非平稳的信号,传统的SVM不足以对与不同认知活动相关的不同大脑状态进行分类。使用标准SVM时,脑状态分类是一项艰巨的任务。因此,在本研究中已经进行了基于内核的支持向量机(k-SVM),用于非冥想(对照组)和基于冥想的脑电图之间的分类。 k-SVM通常被称为非线性分类器。在目前的工作中,已经进行了一项比较研究,以使用SVM和Kernel-SVM(k-SVM)对与Kriya瑜伽冥想练习相关的静息大脑状态进行分类。已从十个非冥想者(对照组)和23个冥想者组中捕获了EEG信号。 SVM和k-SVM的结果均已显示并在两组中进行了比较。此外,已发现SVM的平均分类准确度为85.543 \%,k-SVM的平均分类准确度为90.8259 \%。所得结果表明,基于核的支持向量机在对冥想和非冥想联合脑电图进行分类方面超过了传统的支持向量机。

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