Facial Expression Recognition Using Neural Network Trained with Zernike Moments

Mohammed Saaidia, N. Zermi, M. Ramdani
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引用次数: 11

Abstract

Neural network classifying method is used in this work to perform facial expression recognition. The processed expressions were the six most pertinent facial expressions and the neutral one. This operation was implemented in three steps. First, a neural network, trained using Zernike moments, was applied to the set of the well known Yale and JAFFE database images to perform face detection. In the second step, detected faces are processed to perform the characterization phase through computed vectors of Zernike moments. At last step, a back propagation neural network was trained to distinguish between the seven emotion's states of a presented face. Finally, method performances were evaluated on the well known JAFEE and YALE database.
基于Zernike矩训练的神经网络面部表情识别
本文采用神经网络分类方法进行面部表情识别。处理后的表情是六个最相关的面部表情和一个中性的面部表情。该操作分三步实施。首先,使用Zernike矩训练的神经网络应用于著名的Yale和JAFFE数据库图像集进行人脸检测。第二步,对检测到的人脸进行处理,通过计算泽尼克矩向量进行表征阶段。最后,训练一个反向传播神经网络来区分呈现的人脸的七种情绪状态。最后,在知名的JAFEE和YALE数据库上对方法进行了性能评价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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