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首页> 外文期刊>The international arab journal of information technology >Person-Independent Facial Expression Recognition Based on Compound Local Binary Pattern (CLBP)
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Person-Independent Facial Expression Recognition Based on Compound Local Binary Pattern (CLBP)

机译:基于复合局部二值模式(CLBP)的独立于人的面部表情识别

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摘要

Automatic recognition of facial expression is an active research topic in computer vision due to its importance in both human-computer and social interaction. One of the critical issues for a successful facial expression recognition system is to design a robust facial feature descriptor. Among the different existing methods, the Local Binary Pattern (LBP) has been proved to be a simple and effective one for facial expression representation. However, the LBP method thresholds P neighbors exactly at the value of the center pixel in a local neighborhood and encodes only the signs of the differences between the gray values. Thus, it loses some important texture information. In this paper, we present a robust facial feature descriptor constructed with the Compound Local Binaiy Pattern (CLBP) for person-independent facial expression recognition, which overcomes the limitations of LBP. The proposed CLBP operator combines extra P bits with the original LBP code in order to construct a robust feature descriptor that exploits both the sign and the magnitude inforination of the differences between the center and the neighbor gray values. The recognition performance of the proposed method is evaluated using the CohnKanade (CK) and the Japanese Female Facial Expression (JAFFE) database with a Support Vector Machine (SVM) classifier. Experimental results with prototypic expressions show the superiority of the CLBP feature descriptor against some well-known appearance-based feature representation methods.
机译:面部表情的自动识别由于在人机和社会互动中的重要性而成为计算机视觉中的活跃研究主题。成功的面部表情识别系统的关键问题之一是设计鲁棒的面部特征描述符。在不同的现有方法中,已证明局部二进制模式(LBP)是一种简单有效的面部表情表示方法。但是,LBP方法将P邻居的阈值精确地设置为局部邻域中的中心像素的值,并且仅对灰度值之间的差异的符号进行编码。因此,它丢失了一些重要的纹理信息。在本文中,我们提出了一种用复合局部二值模式(CLBP)构建的鲁棒的面部特征描述符,用于人独立的面部表情识别,克服了LBP的局限性。提出的CLBP运算符将多余的P位与原始LBP码组合在一起,以构造一个鲁棒的特征描述符,该描述符利用中心灰度值和相邻灰度值之间差的正负号和大小信息。使用CohnKanade(CK)和带有支持向量机(SVM)分类器的日本女性面部表情(JAFFE)数据库,评估了该方法的识别性能。原型表达式的实验结果表明,CLBP特征描述符相对于一些众所周知的基于外观的特征表示方法具有优越性。

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