Expression recognition using directional gradient local pattern and gradient-based ternary texture patterns

Z. Shokoohi, Ramin Bahmanjeh, K. Faez
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引用次数: 5

Abstract

Facial expression is an important channel in human communication. Therefore, the problem of facial expression recognition (FER) attracts the growing attention of the research community in the recent years. In this context, the critical point for is the possibility to detect accurately the emotional features. An effective facial feature descriptor is an important issue in the design of a successful expression recongnition algorithm. Although recently there have been certain progress in this domain, extracting a face feature descriptor stable under changing environment is still a difficult task. In this paper, we illustrate empirically the algorithm of person-independent facial expression recognition based on statistical local features such as Directional gradient Local Pattern (DGLP) and gradient local ternary pattern (GLTP). The combined DGLP and GLTP operator encodes the local texture of an image by computing the gradient magnitudes of local neighborhood as well as the angle of direction of the edge and converts those values into feature vector. The results obtained indicate that the combined DGLP and GLTP method performs better than other methods used for facial expression recognition problems in high-textured facial regions.
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基于方向梯度的局部模式和基于梯度的三元纹理模式的表情识别
面部表情是人类交流的重要渠道。因此,面部表情识别问题近年来越来越受到研究界的关注。在这种情况下,关键的一点是能否准确地检测出情绪特征。有效的面部特征描述符是设计成功的表情识别算法的一个重要问题。尽管近年来该领域的研究取得了一定的进展,但提取在环境变化下稳定的人脸特征描述子仍然是一个难点。本文对基于方向梯度局部模式(DGLP)和梯度局部三元模式(GLTP)等统计局部特征的人脸独立识别算法进行了实证研究。结合DGLP和GLTP算子,通过计算局部邻域的梯度大小和边缘的方向角,对图像的局部纹理进行编码,并将这些值转换为特征向量。结果表明,DGLP和GLTP联合方法在高纹理面部区域的面部表情识别问题上优于其他方法。
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