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Pose-Invariant Facial Expression Recognition Using Variable-Intensity Templates

机译:使用可变强度模板的姿势不变面部表情识别

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摘要

In this paper, we propose a method for pose-invariant facial expression recognition from monocular video sequences. The advantage of our method is that, unlike existing methods, our method uses a simple model, called the variable-intensity template, for describing different facial expressions. This makes it possible to prepare a model for each person with very little time and effort. Variable-intensity templates describe how the intensities of multiple points, defined in the vicinity of facial parts, vary with different facial expressions. By using this model in the framework of a particle filter, our method is capable of estimating facial poses and expressions simultaneously. Experiments demonstrate the effectiveness of our method. A reognition rate of over 90% is achieved for all facial orientations, horizontal, vertical, and in-plane, in the range of ±40 degrees, ±20 degrees, and ±40 degrees from the frontal view, respectively.
机译:在本文中,我们提出了一种从单眼视频序列中识别姿势不变的面部表情的方法。我们的方法的优势在于,与现有方法不同,我们的方法使用一个称为可变强度模板的简单模型来描述不同的面部表情。这样就可以用很少的时间和精力为每个人准备一个模型。可变强度模板描述了在面部部位附近定义的多个点的强度如何随不同的面部表情而变化。通过在粒子过滤器的框架中使用此模型,我们的方法能够同时估计面部姿势和表情。实验证明了我们方法的有效性。从正面看,所有面部方向(水平,垂直和平面内)的识别率均超过90%,分别在±40度,±20度和±40度的范围内。

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