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Discrimination of multiple stress levels in virtual reality environments using heart rate variability

机译:利用心率变异性辨别虚拟现实环境中的多重应力水平

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People are suffering from various stress during daily living. Stress can cause a variety of symptoms, and in severe cases, it can lead to a dangerous disease. For this reason, it is essential to develop a simple method to evaluate stress level precisely. Popularly, heart rate variability (HRV) is used because it can reflect autonomic nervous system (ANS) activity. On the other hand, virtual reality (VR), which can provide environments similar to reality, is widely used in laboratory-based experiments. In this paper, we analyzed the HRV of healthy people by using the photoplethysmogram (PPG) while providing diverse stress situations. To detect and classify the exact stress levels, extracted HRV features and linear discriminant analysis (LDA) were utilized. As a result, high multi-class classification accuracy was obtained: Baseline (74%), mild stress (81%), and severe stress (82%).
机译:人们在日常生活期间患有各种压力。压力会导致各种症状,并且在严重的情况下,它会导致危险的疾病。因此,必须开发一种简单的方法来精确地评估压力水平。普遍的是,使用心率变异性(HRV),因为它可以反映自主神经系统(ANS)活动。另一方面,可以提供类似于现实的环境的虚拟现实(VR),广泛用于基于实验室的实验。在本文中,我们通过使用光增肌法(PPG)分析了健康人的HRV,同时提供不同的应力情况。为了检测和分类确切的应力水平,利用提取的HRV特征和线性判别分析(LDA)。结果,获得了高等级别的分类精度:基线(74%),低于胁迫(81%)和严重应激(8​​2%)。

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