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Improving Video Based Heart Rate Monitoring

机译:提高基于视频的心率监测

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Non-contact measurements of cardiac pulse can provide robust measurement of heart rate (HR) without the annoyance of attaching electrodes to the body. In this paper we explore a novel and reliable method to carry out video-based HR estimation and propose various performance improvement over existing approaches. The investigated method uses Independent Component Analysis (ICA) to detect the underlying HR signal from a mixed source signal present in the RGB channels of the image. The original ICA algorithm was implemented and several modifications were explored in order to determine which one could be optimal for accurate HR estimation. Using statistical analysis, we compared the cardiac pulse rate estimation from the different methods under comparison on the extracted videos to a commercially available oximeter. We found that some of these methods are quite effective and efficient in terms of improving accuracy and latency of the system. We have made the code of our algorithms openly available to the scientific community so that other researchers can explore how to integrate video-based HR monitoring in novel health technology applications. We conclude by noting that recent advances in video-based HR monitoring permit computers to be aware of a user's psychophysiological status in real time.
机译:心脏脉冲的非接触式测量可以提供心率(HR)的鲁棒测量,而不会将电极连接到身体上的烦恼。在本文中,我们探索了一种新的和可靠的方法来开展基于视频的人力资源估计,并提出了对现有方法的各种性能改进。研究方法使用独立的分量分析(ICA)来检测来自图像的RGB信道中存在的混合源信号的底层HR信号。实现了原始的ICA算法,并探讨了几种修改,以便确定哪一个可以最佳地用于准确的HR估计。使用统计分析,我们将来自不同方法的心脏脉冲速率估计与在所提取的视频的比较中与市售的血氧计相比。我们发现,在提高系统的准确性和延迟方面,其中一些方法非常有效和高效。我们已将我们的算法的代码公开使用给科学界,以便其他研究人员可以探索如何在新的健康技术应用中集成基于视频的HR监控。我们通过注意到最近基于视频的人力资源监测允许计算机的进步,从而了解用户的心理生理状态实时。

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