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Classification of facial-emotion expression in the application of psychotherapy using Viola-Jones and Edge-Histogram of Oriented Gradient

机译:使用中提风琼斯和边缘直方图在心理治疗应用中面部情感表达的分类

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Psychotherapy requires appropriate recognition of patient's facial-emotion expression to provide proper treatment in psychotherapy session. To address the needs this paper proposed a facial emotion recognition system using Combination of Viola-Jones detector together with a feature descriptor we term Edge-Histogram of Oriented Gradients (E-HOG). The performance of the proposed method is compared with various feature sources including the face, the eyes, the mouth, as well as both the eyes and the mouth. Seven classes of basic emotions have been successfully identified with 96.4% accuracy using Multi-class Support Vector Machine (SVM). The proposed descriptor E-HOG is much leaner to compute compared to traditional HOG as shown by a significant improvement in processing time as high as 1833.33% (p-value = 2.43E-17) with a slight reduction in accuracy of only 1.17% (p-value = 0.0016).
机译:心理治疗需要适当识别患者的面部情感表达,以在心理治疗会议中提供适当的治疗方法。为了满足需求,本文提出了一种面部情感识别系统,使用中提琴探测器的组合以及我们术语边缘直方图的特征描述符(E-HOG)。将所提出的方法的性能与各种特征来源进行比较,包括面部,眼睛,嘴巴以及眼睛和口腔。使用多级支持向量机(SVM)成功地确定了七种课程的基本情绪。所提出的描述符E-Hog与传统的生猪相比,与传统的生猪相比,如1833.33%(p值= 2.43e-17)的加工时间显着改善,精度只有1.17%( p值= 0.0016)。

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