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Impact of motion artifacts on video-based non-intrusive heart rate measurement

机译:运动伪影对基于视频的非介入式心率测量的影响

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Measuring vital signs such as heart rate using a camera has the potential to enable better health monitoring for subjects at risk and as such enhance their quality of life. Applications could include driver monitoring via in-dash camera, critical function operator monitoring at work, or remote health monitoring via a webcam. For such a system to be feasible however, it needs to be work well in realistic scenarios where the subject does not sit completely still in front of a camera. Motion artifacts, if not taken into account when designing the system, yield inaccurate results and potentially create false alarms. In this paper, we start with a popular algorithm for extracting heart rate from video based on spatial and temporal filtering, quantify how key parameters used in the algorithm affect its performance in situations when the subject is not sitting still, analyze in detail the performance of the filtering approach in videos with motion, identify issues, and propose approaches to overcome those limitations. The paper shows that the use of wider filters and more levels in the Gaussian pyramid lead to a better performance when the subject is moving, but that the motion artifacts dominate the extracted signal.
机译:使用照相机测量生命体征,例如心律,有可能对处于危险中的受试者进行更好的健康监测,从而提高他们的生活质量。应用程序可能包括通过内置摄像头监视驾驶员,在工作中监视关键功能操作员或通过网络摄像头进行远程健康监视。然而,为了使这样的系统可行,它需要在对象没有完全静止地坐在摄像机前的现实场景中良好地工作。如果在设计系统时未考虑运动伪影,则会产生不准确的结果,并可能产生虚假警报。在本文中,我们从基于时空滤波的视频中提取心率的流行算法开始,量化算法中使用的关键参数在对象不坐着的情况下如何影响其性能,并详细分析动态视频中的过滤方法,找出问题并提出克服这些限制的方法。该论文表明,当对象移动时,在高斯金字塔中使用更宽的滤波器和更多的级别会导致更好的性能,但是运动伪像在提取的信号中占主导地位。

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