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Proposed Approach of Detecting Facial Emotion using Neural Network and Representational of HOG Features

机译:神经网络和HOG特征表示的面部表情检测方法

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The subject of emotion detection from digital image has gained exceptional importance in recent years due to the expansion of visual applications in variowefields of life. With respect to the emotion of human face, the matter becomes more complex according to its variety. At the same time, this matter becomes easier if the computerized technique is used to learn most known emotions and then detect it in the final imaging system. In this paper, a new approach for detecting emotion of human face has been proposed using artificial neural network (ANN). This network is feed by a set of histogram of gradient (HOG) features, as a representative reference to describe the entire emotion. The determining of HOG features is limited to specific region of the face within the digital image. This region is designed to take T shape which covers main parts of human face (eye, noise, mouth, and eyebrow) that are changed with emotion type. The proposed approach is evaluated by standard emotion dataset (JAFFE) in both phases of ANN (training and testing). The simulation results view significant percentage of accuracy in comparison with the existing technique of emotion detection.
机译:由于近年来在生活领域中视觉应用的扩展,从数字图像进行情感检测的主题已变得异常重要。关于人脸的情感,根据其种类的变化,事情变得更加复杂。同时,如果使用计算机技术来学习大多数已知的情绪,然后在最终的成像系统中将其检测出来,则此事将变得更加容易。本文提出了一种利用人工神经网络(ANN)检测人脸情绪的新方法。该网络由一组梯度直方图(HOG)功能提供,作为描述整个情绪的代表参考。 HOG特征的确定限于数字图像内的面部的特定区域。该区域被设计为T形,覆盖了随着情感类型而变化的人脸主要部分(眼睛,噪音,嘴巴和眉毛)。在ANN的两个阶段(训练和测试)中,通过标准情感数据集(JAFFE)对提出的方法进行评估。与现有的情绪检测技术相比,仿真结果显示出较高的准确性百分比。

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