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Remote heart rate variability for emotional state monitoring

机译:情绪状态监测的远程心率变化

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Several researches have been conducted to recognize emotions using various modalities such as facial expressions, gestures, speech or physiological signals. Among all these modalities, physiological signals are especially interesting because they are mainly controlled by the autonomic nervous system. It has been shown for example that there is an undeniable relationship between emotional state and Heart Rate Variability (HRV). In this paper, we present a methodology to monitor emotional state from physiological signals acquired remotely. The method is based on a remote photoplethysmography (rPPG) algorithm that estimates remote Heart Rate Variability (rHRV) using a simple camera. We first show that the rHRV signal can be estimated with a high accuracy (more than 96% in frequency domain). Then, frequency-feature of rHRV is calculated and we show that there is a strong correlation between the rHRV feature and different emotional states. This observation has been validated on 12 out of 16 volunteers and video-induced emotions which opens the way to contactless monitoring of emotions from physiological signals.
机译:已经进行了几项研究以识别使用各种模态,例如面部表情,手势,语音或生理信号。在所有这些模式中,生理信号特别有趣,因为它们主要由自主神经系统控制。已经显示出例如情绪状态和心率变异性(HRV)之间存在不可否认的关系。在本文中,我们提出了一种从远程获得的生理信号监测情绪状态的方法。该方法基于使用简单的相机估计远程心率变异性(RHRRV)的远程光学电脑识别(RPPG)算法。首先表明RHRV信号可以高精度(频域中超过96±5%)。然后,计算RHRV的频率特征,我们表明RHRV特征与不同情绪状态之间存在强烈的相关性。此观察结果已于16名志愿者和视频诱导的情绪中验证,这是从生理信号中接触非接触式监测情绪的方式。

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