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Facial expression recognition based on diffeomorphic matching

机译:基于差异变形匹配的面部表情识别

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This paper presents a new framework for facial expression recognition based on diffeomorphic matching. First landmarks are selected based on a manual or automatic method. All of the landmarks from different images are registered to a reference landmark set using a rigid registration algorithm. The pair-wise geodesic distance between all sets of landmarks are then computed using diffeomorphic matching. Finally, a K-Nearest Neighbor classifier (KNN) is used to classify a query image using the geodesic distances. Both the classification and classical MultiDimensional Scaling results show that geodesic distance is more effective than Euclidean distance on capturing the face shape variation.
机译:本文提出了一种基于微形匹配的面部表情识别新框架。基于手动或自动方法选择第一个地标。使用刚性配准算法,将来自不同图像的所有地标配准到参考地标集。然后,使用差分变形匹配来计算所有地标集之间的成对测地距离。最后,使用K最近邻分类器(KNN)使用测地距离对查询图像进行分类。分类和经典多维比例缩放结果均表明,测地距离在捕获面部形状变化方面比欧几里得距离更有效。

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