面部表情识别与情感情绪合成

Xu Chao, Feng Zhiyong
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引用次数: 5

摘要

面部表情识别与合成是情感计算中研究人类对环境反应的重要研究领域。随着多元统计数学理论和多媒体技术特别是图像处理技术的迅速发展,面部表情识别研究取得了许多有益的成果。最近的研究表明,面部建模、表情识别和综合分析方法可以应用于现实世界中的安全控制甚至实时健康监测。如何实现面部表情的相似度识别和合成,是无独立机构设计的核心问题。在对独立用户情感面部识别研究进行认知分析的基础上,提出了一种情感构成模型,用于挖掘用户新的情感面部表情。在此基础上,运用主成分、聚类和判别分析,展示并验证了独立用户的情感表情可以由快乐、中性、不快乐等基本面部表情合成合成。实验证明了我们的模型是非常重要的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Facial Expression Recognition and Synthesis on Affective Emotions Composition
Facial expressions recognition and synthesis are important research fields to study how human beings reflect to environments in affective computing. With the rapid development of mathematical theory on multivariate statistics and multi-media technology especially image processing, facial expressions recognition researchers have achieved many useful results. Recently studies show that approaches to facial modeling and expressions recognition and synthesis analysis could be adapted to control security or even real-time health monitoring in the real world. Similarity, how to achieve facial expressions recognition and synthesis for independent-free mechanism is a central design in general. Based on the cognitive analysis of independent user's affective facial recognition researches we proposed an emotions composition model to dope out what are the user's new affective facial expressions. At this point, principal component, cluster and discriminate analysis were applied to show and verify independent user's affective expressions can be composited for synthesis by basic facial expressions such as happy, neutral and unhappy. Experiments were conducted to prove our models to be very significant.
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