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首页> 外文期刊>The Visual Computer >Automatic facial expression recognition in real-time from dynamic sequences of 3D face scans
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Automatic facial expression recognition in real-time from dynamic sequences of 3D face scans

机译:从3D面部动态扫描序列实时实时自动识别面部表情

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摘要

In this paper, we present a fully-automatic and real-time approach for person-independent recognition of facial expressions from dynamic sequences of 3D face scans. In the proposed solution, first a set of 3D facial landmarks are automatically detected, then the local characteristics of the face in the neighborhoods of the facial landmarks and their mutual distances are used to model the facial deformation. Training two hidden Markov models for each facial expression to be recognized, and combining them to form a multiclass classifier, an average recognition rate of 79.4 % has been obtained for the 3D dynamic sequences showing the six prototypical facial expressions of the Bing-hamton University 4D Facial Expression database. Comparisons with competitor approaches on the same database show that our solution is able to obtain effective results with the advantage of being capable to process facial sequences in real-time.
机译:在本文中,我们提出了一种全自动,实时的方法,用于从3D面部扫描的动态序列中识别人的面部表情。在提出的解决方案中,首先自动检测一组3D面部地标,然后使用面部在地标邻域中的局部特征及其相互距离对面部变形进行建模。对每个要识别的面部表情训练两个隐藏的马尔可夫模型,并将它们组合起来形成一个多类分类器,对于显示Bing-hamton University 4D六个原型面部表情的3D动态序列,平均识别率为79.4%面部表情数据库。与同一数据库上竞争对手方法的比较表明,我们的解决方案能够获得有效的结果,并且具有能够实时处理面部序列的优势。

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