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Feature-point tracking by optical flow discriminates subtle differences in facial expression

机译:通过光学流的特征点跟踪判别面部表情的微妙差异

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Current approaches to automated analysis have focused an a small set of prototypic expressions (e.g. joy or anger). Prototypic expressions occur infrequently in everyday life, however, and emotion expression is far more varied. To capture the full range of emotion expression, automated discrimination of fine grained changes in facial expression is needed. We developed and implemented an optical flow based approach (feature point tracking) that is sensitive to subtle changes in facial expression. In image sequences from 100 young adults, action units and action unit combinations in the brow and mouth regions were selected for analysis if they occurred a minimum of 25 times in the image database. Selected facial features were automatically tracked using a hierarchical algorithm for estimating optical flow. Image sequences were randomly divided into training and test sets. Feature point tracking demonstrated high concurrent validity with human coding using the Facial Action Coding System (FACS).
机译:目前的自动分析方法集中了一小组原型表达(例如喜悦或愤怒)。然而,在日常生活中不经常发生原型表达,情感表达更加多样化。为了捕获全方位的情绪表达,需要自动辨别面部表情的细粒度变化。我们开发并实施了一种基于光流的方法(特征点跟踪),对面部表情的微妙变化很敏感。在从100个年轻人的图像序列中,如果在图像数据库中发生至少25次,则选择眉头和口区域中的动作单位和动作单位组合。使用分层算法自动跟踪所选面部特征,用于估计光学流量。图像序列随机分为训练和测试集。特征点跟踪使用面部动作编码系统(FACS)对人类编码进行了高并发有效性。

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