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Subject Independent Facial Emotion Classification Using Geometric Based Features

机译:基于几何特征的受试者独立面部情感分类

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摘要

Accurate emotion categorization is an important and challenging task in computer vision and image processing fields. Facial emotion recognition system implies three important stages: Prep-processing and face area allocation, feature extraction and classification. In this study a new system based on geometric features (distances and angles) set derived from the basic facial components such as eyes, eyebrows and mouth using analytical geometry calculations. For classification stage feed forward neural network classifier is used. For evaluation purpose the Standard database "JAFFE" have been used as test material; it holds face samples for seven basic emotions. The results of conducted tests indicate that the use of suggested distances, angles and others relative geometric features for recognition give accuracy about 95.73% when the seven emotion classes are tested and 97.23% when the 6 classes (except normal class) are only tested. These rates are considered high when compared with the results of other newly published works.
机译:准确的情感分类是计算机视觉和图像处理领域中一项重要且具有挑战性的任务。面部表情识别系统包含三个重要阶段:准备处理和面部区域分配,特征提取和分类。在这项研究中,基于几何特征(距离和角度)的新系统集是使用解析几何计算从基本面部组件(例如眼睛,眉毛和嘴巴)派生而来的。对于分类阶段,使用前馈神经网络分类器。为了进行评估,标准数据库“ JAFFE”已用作测试材料。它拥有七种基本情绪的面部样本。进行的测试结果表明,使用建议的距离,角度和其他相对几何特征进行识别时,对七个情感等级进行测试,准确率约为95.73%,而仅对6个等级(正常类别除外)进行测试时,准确率约为97.23%。与其他新出版作品的结果相比,这些比率被认为是很高的。

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