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Local Group Invariance for Heart Rate Estimation from Face Videos in the Wild

机译:野生脸上视频的心率估计本地群体不变性

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We study the impact of prior knowledge about invariance for the task of heart rate estimation from face videos in the wild (e.g. in presence of disturbing factors like rigid head motion, talking, facial expressions and natural illumination conditions under different scenarios). We introduce features invariant with respect to the action of a differentiable local group of local transformations. As result, the energy of the blood volume signal is re-arranged in vector space with a more concentrated distribution. The uncertainty in the feature distribution is incorporated with a model that leverages the local invariance of the heart rate. During experiments the method achieved strong estimation performance of heart rate from face videos in the wild. To demonstrate the potential of the approach it is compared against recent algorithms on data collected to study the impact of the mentioned nuisance attributes. To facilitate future comparisons, we made the code and data for reproducing the results publicly available.
机译:我们研究了现有知识对野外脸上脸上的心率估计任务的不变性的影响(例如,在不同情景下的刚性头部运动,谈话,面部表情和自然照明条件等令人不安的因素存在)。我们介绍了不同于差异的本地转换组的动作的功能不变。结果,血液体积信号的能量在载体空间中重新排列,其具有更浓缩的分布。特征分布中的不确定性纳入了利用心率的局部不变性的模型。在实验期间,该方法达到了野外脸部视频的强烈估算性能。为了证明这种方法的潜力,它与收集的数据的最近算法进行比较,以研究提到的滋扰属性的影响。为了促进未来的比较,我们提出了可公开可用的结果的代码和数据。

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