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Human Heart Rate Estimation Using Ordinary Cameras under Natural Movement

机译:自然运动下使用普通相机进行人心率估计

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Non-contact face-video based human heart rate (HR) estimation has attracted a lot of attentions in recent years. Almost all the state-of-the-art webcam or smartphone based HR estimation methods comprise three main steps: firstly, a region of interest (ROI) on the human face is detected in each video frame, then, the target signal is obtained by fusing multiple raw traces, which are extracted from the RGB channels across all the video frames, finally, HR is estimated by applying frequency analysis approach to the target signal. However, three major drawbacks impede the applicability of the current methods: (1) the performance of ROI detection is susceptible to head motion and facial expression, (2) there is still a lack of well-accepted method for fusing raw traces to form the target signal, and (3) the adopted frequency analysis approaches always provide estimation results with low resolution and high side lobes. To address these issues, we propose a novel HR estimation method which is applicable to ordinary cameras subject to natural head movement or facial expression. The proposed method features ROI detection via facial feature detection and tracking, target signal extraction via Independent Component Analysis (ICA) in the RGB channels, and HR estimation via real-valued iterative adaptive approach (RIAA). Experimental results validate the superiority of our proposed method.
机译:近年来,基于非接触式面部视频的人心率(HR)估计引起了很多关注。几乎所有基于网络摄像头或智能手机的最新HR估计方法都包括三个主要步骤:首先,在每个视频帧中检测人脸上的感兴趣区域(ROI),然后通过以下方法获得目标信号:融合从所有视频帧的RGB通道中提取的多个原始轨迹,最后,通过对目标信号应用频率分析方法来估算HR。但是,三个主要缺点阻碍了当前方法的适用性:(1)ROI检测的性能易受头部运动和面部表情的影响,(2)仍然缺乏公认的方法来融合原始痕迹来形成ROI。目标信号,以及(3)所采用的频率分析方法始终提供具有低分辨率和高旁瓣的估计结果。为了解决这些问题,我们提出了一种新颖的HR估计方法,该方法适用于受自然头部运动或面部表情影响的普通相机。所提出的方法具有通过面部特征检测和跟踪进行ROI检测,通过RGB通道中的独立分量分析(ICA)进行目标信号提取以及通过实值迭代自适应方法(RIAA)进行HR估计的功能。实验结果验证了我们提出的方法的优越性。

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