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Self-Adaptive Matrix Completion for Heart Rate Estimation from Face Videos under Realistic Conditions

机译:现实条件下人脸视频心率估计的自适应矩阵完成

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Recent studies in computer vision have shown that, while practically invisible to a human observer, skin color changes due to blood flow can be captured on face videos and, surprisingly, be used to estimate the heart rate (HR). While considerable progress has been made in the last few years, still many issues remain open. In particular, state of-the-art approaches are not robust enough to operate in natural conditions (e.g. in case of spontaneous movements, facial expressions, or illumination changes). Opposite to previous approaches that estimate the HR by processing all the skin pixels inside a fixed region of interest, we introduce a strategy to dynamically select face regions useful for robust HR estimation. Our approach, inspired by recent advances on matrix completion theory, allows us to predict the HR while simultaneously discover the best regions of the face to be used for estimation. Thorough experimental evaluation conducted on public benchmarks suggests that the proposed approach significantly outperforms state-of the-art HR estimation methods in naturalistic conditions.
机译:最近在计算机视觉中的研究表明,尽管人类观察者几乎看不见,但是由于血液流动引起的皮肤颜色变化可以捕获在面部视频中,并且令人惊讶地被用于估计心率(HR)。尽管在过去几年中取得了长足的进步,但仍有许多问题尚待解决。特别地,现有技术的方法不足以在自然条件下操作(例如,在自发运动,面部表情或照明变化的情况下)。与以前通过处理感兴趣的固定区域内的所有皮肤像素来估计HR的方法相反,我们引入了一种策略来动态选择可用于鲁棒HR估计的面部区域。我们的方法受到矩阵完成理论最新进展的启发,使我们能够预测HR,同时发现面部的最佳区域以进行估计。在公共基准上进行的全面实验评估表明,在自然主义条件下,所提出的方法明显优于最新的HR估计方法。

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