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A Review on ECG Signal Analysis for Mental Stress Assessment

机译:心电图评估心理压力的信号分析

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In current scenario, the mental stress is becoming an unavoidable part of our daily life because of various social and professional responsibilities. In literature, various biomedical signals such as electrocardiogram (ECG), electroencephalogram (EEG), electromyogram (EMG) together with other biomedical parameters such as body temperature, the pulse rate and heartrate variability (HRV) have been used for the detection and classification of mental stress levels in a patient. In the present work, a comprehensive review of various methods used in literature for the assessment and classification of mental stress is presented. The work done in this area mainly during the last decade is studied considering the important aspects of ECG signal analysis such as data acquisition, feature extraction, feature selection and classification. The basic steps required for the detection of mental stress using different features of ECG signals are discussed. Popularly used classification algorithms for mental stress are considered in the work and their results are compared.
机译:在当前情况下,由于各种社会和职业责任,精神压力已成为我们日常生活中不可避免的一部分。在文献中,各种生物医学信号(例如心电图(ECG),脑电图(EEG),肌电图(EMG))以及其他生物医学参数(例如体温,脉搏率和心率变异性(HRV))已用于检测和分类患者的精神压力水平。在目前的工作中,对文献中用于评估和分类精神压力的各种方法进行了全面回顾。考虑到ECG信号分析的重要方面(例如数据采集,特征提取,特征选择和分类),主要研究了在过去十年中在该领域所做的工作。讨论了使用心电图信号的不同特征检测精神压力所需的基本步骤。在工作中考虑了普遍使用的心理压力分类算法,并对其结果进行了比较。

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