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A human emotion recognition system using supervised self-organising maps

机译:使用监督自组织图的人类情感识别系统

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Emotions constantly guide and modulate our rationality which plays an essential role in how we behave intelligently while interacting with other humans as well as machines. The technique described here provides an effective interface between humans and machines using facial expressions. This technique could be used to allow machines to incorporate an interpretation of human emotions in their principles of rationality, which could result in a more intelligent interaction with humans. In this technique, 15 feature values are calculated from the 18 feature points set on the facial images. It uses clustering based approach and supervised self-organising maps for emotion classification. The novelty of this technique is that it uses a modified form of FACS (Facial Action Coding System) to get 15 facial feature vectors of an image. Five emotions that have been considered are: neutral, anger, happy, sad and surprised. A self-clicked authentic emotion database of web-cam clicked images is used. The technique has been implemented and high efficiency has been confirmed in real-time application.
机译:情绪不断地引导和调节我们的理性,而理性在我们如何与其他人以及机器进行交互时如何明智地行为中起着至关重要的作用。此处描述的技术使用面部表情在人与机器之间提供了有效的界面。该技术可用于允许机器在其合理性原理中纳入对人类情感的解释,这可能会导致与人类的互动更加智能。在该技术中,从在面部图像上设置的18个特征点计算出15个特征值。它使用基于聚类的方法和受监督的自组织图进行情感分类。该技术的新颖之处在于它使用FACS(面部动作编码系统)的改进形式来获取图像的15个面部特征向量。已经考虑了五种情绪:中立,愤怒,快乐,悲伤和惊讶。使用网络摄像头单击的图像的自单击的真实情感数据库。该技术已经实现,并且在实时应用中已经确认了高效率。

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