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Classification of acute stress using linear and non-linear heart rate variability analysis derived from sternal ECG

机译:基于胸骨心电图的线性和非线性心率变异性分析对急性应激进行分类

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Chronic stress detection is an important factor in predicting and reducing the risk of cardiovascular disease. This work is a pilot study with a focus on developing a method for detecting short-term psychophysiological changes through heart rate variability (HRV) features. The purpose of this pilot study is to establish and to gain insight on a set of features that could be used to detect psychophysiological changes that occur during chronic stress. This study elicited four different types of arousal by images, sounds, mental tasks and rest, and classified them using linear and non-linear HRV features from electrocardiograms (ECG) acquired by the wireless wearable ePatch® recorder. The highest recognition rates were acquired for the neutral stage (90%), the acute stress stage (80%) and the baseline stage (80%) by sample entropy, detrended fluctuation analysis and normalized high frequency features. Standardizing non-linear HRV features for each subject was found to be an important factor for the improvement of the classification results.
机译:慢性压力检测是预测和降低心血管疾病风险的重要因素。这项工作是一项试点研究,重点是开发一种通过心率变异性(HRV)功能检测短期心理生理变化的方法。这项初步研究的目的是建立并获得对可用于检测慢性应激期间发生的心理生理变化的一组功能的了解。这项研究通过图像,声音,精神任务和休息引发了四种不同类型的唤醒,并使用从无线可穿戴式ePatch®记录仪获取的心电图(ECG)的线性和非线性HRV功能对它们进行了分类。通过样本熵,去趋势波动分析和归一化的高频特征,在中性阶段(90%),急性应激阶段(80%)和基线阶段(80%)获得了最高的识别率。发现每个受试者的非线性HRV特征的标准化是改善分类结果的重要因素。

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