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Robustness of Remote Stress Detection from Visible Spectrum Recordings

机译:可见光谱记录的远程压力检测的鲁棒性

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In our recent work, we have shown that it is possible to extract high fidelity timing information of the cardiac pulse wave from visible spectrum videos, which can then be used as a basis for stress detection. In that approach, we used both heart rate variability (HRV) metrics and the differential pulse transit time (dPTT) as indicators of the presence of stress. One of the main concerns in this analysis is its robustness in the presence of noise, as the remotely acquired signal that we call blood wave (BW) signal is degraded with respect to the signal acquired using contact sensors. In this work, we discuss the robustness of our metrics in the presence of multiplicative noise. Specifically, we study the effects of subtle motion due to respiration and changes in illumination levels due to light flickering on the BW signal, the HRV-driven features, and the dPTT. Our sensitivity study involved both Monte Carlo simulations and experimental data from human facial videos, and indicates that our metrics are robust even under moderate amounts of noise. Generated results will help the remote stress detection community with developing requirements for visual spectrum based stress detection systems.
机译:在我们最近的工作中,我们已经表明,可以从可见光谱视频中提取心脉冲波的高保真定时信息,然后可以用作应力检测的基础。在这种方法中,我们使用心率变异性(HRV)度量和差分脉冲传输时间(DPTT)作为存在应力的指标。该分析中的主要问题之一是其在存在噪声的鲁棒性,因为我们呼叫血波(BW)信号的远程获取信号相对于使用接触传感器获取的信号来降低。在这项工作中,我们讨论了乘法噪声存在下指标的稳健性。具体地,我们研究了由于BW信号,HRV驱动特征和DPTT的光闪烁而导致的微妙运动的影响和照明水平的变化。我们的敏感性研究涉及来自人类面部视频的蒙特卡罗模拟和实验数据,并表明我们的指标即使在适度的噪声下也是强大的。生成的结果将有助于远程应力检测界具有显影基于视觉频谱的应力检测系统的要求。

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