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Model-based (passive) heart rate estimation using remote video recording of moving human subjects illuminated by ambient light

机译:基于模型的(被动)心率估计,使用通过环境光照射的移动人体的远程视频记录

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This paper addresses the video processing problem of passively estimating the heart rate of a human subject that is being video recorded in ambient light in natural conditions in which some motion is allowable. This extends previous work in which control over lighting and motion are required. A mathematical model is developed for the measured pixels on the subject's forehead. This model includes (1) a Markov process that accounts for the large scale but slowly fluctuating variations in reflected light, and (2) a quasi-periodic process to model the relatively small heart beat component. A framework for estimating these components is proposed and results of applying this method to real data recordings is presented. Results are compared to heart rate obtained from a pulse oximeter attached to the subject's finger.
机译:本文解决了视频处理问题,即在允许某些运动的自然条件下,被动地估计正在环境光下录制的人类对象的心率。这扩展了以前需要控制照明和运动的工作。针对对象前额上的测量像素开发了数学模型。该模型包括(1)马尔可夫过程,该过程考虑了大规模但反射光的变化缓慢波动,以及(2)拟周期过程,用于对相对较小的心跳分量进行建模。提出了一个估计这些组成部分的框架,并提出了将该方法应用于实际数据记录的结果。将结果与从附着在受试者手指上的脉搏血氧仪获得的心率进行比较。

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