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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Facial expression recognition based on shape and texture
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Facial expression recognition based on shape and texture

机译:基于形状和纹理的面部表情识别

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摘要

In this paper, an efficient method for human facial expression recognition is presented. We first propose a representation model for facial expressions, namely the spatially maximum occurrence model (SMOM), which is based on the statistical characteristics of training facial images and has a powerful representation capability. Then the elastic shape-texture matching (ESTM) algorithm is used to measure the similarity between images based on the shape and texture information. By combining SMOM and ESTM, the algorithm, namely SMOM-ESTM, can achieve a higher recognition performance level. The recognition rates of the SMOM-ESTM algorithm based on the AR database and the Yale database are 94.5% and 94.7%, respectively.
机译:本文提出了一种有效的人脸表情识别方法。我们首先提出一种用于面部表情的表示模型,即最大空间出现模型(SMOM),该模型基于训练的面部图像的统计特征并且具有强大的表示能力。然后,基于形状和纹理信息,使用弹性形状纹理匹配(ESTM)算法来测量图像之间的相似度。通过将SMOM和ESTM相结合,该算法即SMOM-ESTM可以达到更高的识别性能水平。基于AR数据库和耶鲁数据库的SMOM-ESTM算法的识别率分别为94.5%和94.7%。

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