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APPLICATION OF S-TRANSFORM FOR AUTOMATED DETECTION OF VIGILANCE LEVEL USING EEG SIGNALS

机译:S变换在脑电信号自动检测水平中的应用

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This paper presents an S-transform-based Electroencephalogram channel optimization and feature extraction methodology for monitoring mental vigilance level of humans. Vigilance level detection methodology consists of four steps. In the first stage, two types of Electroencephalogram signals (alert and drowsy) are acquired from 30 healthy subjects and decomposed into sub-bands using the S-transform. In the second stage, permutation entropy of the S-transform coefficients is calculated and Electroencephalogram channel optimization is performed. S-transform-based statistical features are computed from the optimized Electroencephalogram channels, in the third stage. In the fourth stage, artificial intelligence techniques such as Least Square-Support Vector Machine, Artificial Neural Network and Naive Bayes Classifier are used for the classification of Electroencephalogram signals using extracted features. The performance of the feature extraction methodology is tested on the Electroencephalogram data of 30 healthy subjects. Experimental results ensured the effectiveness of proposed methodology for the estimation of mental vigilance level by using Electroencephalogram signals. It is observed that the Artificial Neural Network classifier is a good candidate for pre-emptive automatic vigilance level detection system for Brain-Computer Interface applications.
机译:本文提出了一种基于S变换的脑电图通道优化和特征提取方法,用于监测人类的心理警戒水平。警戒级别检测方法包括四个步骤。在第一阶段,从30名健康受试者中采集两种类型的脑电图信号(警报和困倦),并使用S变换将其分解为子带。在第二阶段,计算S变换系数的置换熵,并进行脑电图通道优化。在第三阶段,从优化的脑电图通道计算基于S变换的统计特征。在第四阶段,将诸如最小二乘支持向量机,人工神经网络和朴素贝叶斯分类器之类的人工智能技术用于利用提取的特征对脑电图信号进行分类。在30位健康受试者的脑电图数据上测试了特征提取方法的性能。实验结果确保了所提出的通过脑电图信号估计心理警觉水平的方法的有效性。可以看出,人工神经网络分类器是用于脑机接口应用的先发制人的自动警惕性水平检测系统的良好候选者。

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