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Face Expression Recognition through Broken Symmetries

机译:通过残缺的对称性进行面部表情识别

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摘要

Security systems, criminology, physical access control and man-machine interactions are examples of applications where recognition of human faces may be crucial. In the present paper a new signature, based on a measure of axial symmetry called DST, is proposed as a significant feature to analyze facial expressions. The measure of symmetry is an elaborate difference between the internal and external symmetry kernels of an object. The idea here is to use the evolution of the symmetry measure of a face over an ordered set of its sub-images. We claim that different evolutionary trends will represent different face expressions. The proposed signature has been tested on several face databases (Psychological Image Collection at Stirling and Jaffe). Experimental results indicate that the proposed signature characterizes normal from happy expression with a good accuracy.
机译:安全系统,犯罪学,物理访问控制和人机交互是识别人脸可能至关重要的应用程序示例。在本文中,提出了一种基于轴向对称性的称为DST的新签名,作为分析面部表情的重要功能。对称性的度量是对象的内部和外部对称内核之间的精心区别。这里的想法是利用面部的对称度量在其子图像的有序集合上的演变。我们声称不同的进化趋势将代表不同的面部表情。提议的签名已在多个面部数据库(斯特林和贾菲的Psychological Image Collection)上进行了测试。实验结果表明,所提出的签名具有良好的准确性,可以从快乐的表情中体现出正常的特征。

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