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RealSense = real heart rate: Illumination invariant heart rate estimation from videos

机译:RealSense =真实心率:视频中的照明不变心率估计

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Recent studies validated the feasibility of estimating heart rate from human faces in RGB video. However, test subjects are often recorded under controlled conditions, as illumination variations significantly affect the RGB-based heart rate estimation accuracy. Intel newly-announced low-cost RealSense 3D (RGBD) camera is becoming ubiquitous in laptops and mobile devices starting this year, opening the door to new and more robust computer vision. RealSense cameras produce RGB images with extra depth information inferred from a latent near-infrared (NIR) channel. In this paper, we experimentally demonstrate, for the first time, that heart rate can be reliably estimated from RealSense near-infrared images. This enables illumination invariant heart rate estimation, extending the heart rate from video feasibility to low-light applications, such as night driving. With the (coming) ubiquitous presence of RealSense devices, the proposed method not only utilizes its near-infrared channel, designed originally to be hidden from consumers; but also exploits the associated depth information for improved robustness to head pose.
机译:最近的研究证实了从RGB视频中的人脸估计心率的可行性。但是,由于光照变化会显着影响基于RGB的心率估计准确性,因此通常会在受控条件下记录测试对象。从今年开始,英特尔新发布的低成本RealSense 3D(RGBD)摄像头在笔记本电脑和移动设备中变得无处不在,这为新的更强大的计算机视觉打开了大门。 RealSense摄像头可产生RGB图像,并具有从潜在的近红外(NIR)通道推断出的额外深度信息。在本文中,我们首次通过实验证明了可以从RealSense近红外图像可靠地估计心率。这样就可以估算照明不变的心率,将心率从视频可行性扩展到夜间照明等弱光应用。随着即将出现的RealSense设备的出现,所提出的方法不仅利用了其最初设计为对消费者隐藏的近红外信道,而且还利用了近红外信道。而且还利用相关的深度信息来提高头部姿势的鲁棒性。

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