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Human expression recognition based on facial features

机译:基于面部特征的人体表达识别

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Facial expression analysis is rapidly becoming an area of interest in computer science and human-computer interaction design communities. The most expressive way human displays emotion is through facial expressions. The contours of the mouth, eyes and eyebrows play an important role in classification of facial expressions. It can be classified into some classes like happiness, sadness, disgust, fear, anger, surprise and neutral. In our study we have used facial parts (two eyes, nose tip, mouth and eyebrow corners) and measured distances from those detected parts. We have used six features and used Canberra Distance (CD) for the recognition of facial expression. Increasing facial expression recognition rate is the main focus of our work. The results show that our system performs better than some other conventional methods.
机译:面部表情分析正在迅速成为计算机科学和人机互动设计社区的兴趣领域。人类展示情绪的最具表现力的方式是通过面部表情。口腔,眼睛和眉毛的轮廓在面部表情的分类中发挥着重要作用。它可以分为一些课程,如幸福,悲伤,厌恶,恐惧,愤怒,惊喜和中立。在我们的研究中,我们使用了面部部件(两个眼睛,鼻尖,嘴巴和眉角),并从检测到的部件测量距离。我们使用了六种特征和使用堪培拉距离(CD)来识别面部表情。增加面部表情识别率是我们工作的主要重点。结果表明,我们的系统比其他一些传统方法表现更好。

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