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A system identification approach for video-based face recognition

机译:一种基于视频的人脸识别系统识别方法

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The paper poses video-to-video face recognition as a dynamical system identification and classification problem. We model a moving face as a linear dynamical system whose appearance changes with pose. An autoregressive and moving average (ARMA) model is used to represent such a system. The choice of ARMA model is based on its ability to take care of the change in appearance while modeling the dynamics of pose, expression etc. Recognition is performed using the concept of sub space angles to compute distances between probe and gallery video sequences. The results obtained are very promising given the extent of pose, expression and illumination variation in the video data used for experiments.
机译:本文提出了视频到视频的面部识别作为动态系统识别和分类的问题。我们将运动面部建模为线性动力学系统,其外观随姿势而变化。自回归和移动平均值(ARMA)模型用于表示这样的系统。 ARMA模型的选择基于其在对姿势,表情等的动力学建模时照顾外观变化的能力。使用子空间角度的概念执行识别,以计算探测器和画廊视频序列之间的距离。考虑到用于实验的视频数据中的姿势,表情和照度变化的程度,获得的结果非常有希望。

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