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Automatic facial expression recognition on a single 3D face by exploring shape deformation

机译:通过探索形状变形,在单个3D面部上自动识别面部表情

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Facial expression recognition has many applications in multimedia processing and the development of 3D data acquisition techniques makes it possible to identify expressions using 3D shape information. In this paper, we propose an automatic facial expression recognition approach based on a single 3D face. The shape of an expressional 3D face is approximated as the sum of two parts, a basic facial shape component (BFSC) and an expressional shape component (ESC). The BFSC represents the basic face structure and neutral-style shape and the ESC contains shape changes caused by facial expressions. To separate the BFSC and ESC, our method firstly builds a reference face for each input 3D non-neutral face by a learning method, which well represents the basic facial shape. Then, based on the BFSC and the original expressional face, a facial expression descriptor is designed. The surface depth changes are considered in the descriptor. Finally, the descriptor is input into an SVM to recognize the expression. Unlike previous methods which recognize a facial expression with the help of manually labeled key points and/or a neutral face, our method works on a single 3D face without any manual assistance. Extensive experiments are carried out on the BU-3DFE database and comparisons with existing methods are conducted. The experimental results show the effectiveness of our method.
机译:面部表情识别在多媒体处理中有许多应用,并且3D数据获取技术的发展使使用3D形状信息识别表情成为可能。在本文中,我们提出了一种基于单个3D人脸的自动面部表情识别方法。表情3D脸的形状近似为基本面部形状成分(BFSC)和表情形状成分(ESC)两部分的总和。 BFSC代表基本的面部结构和中性风格的形状,而ESC包含由面部表情引起的形状变化。为了将BFSC和ESC分开,我们的方法首先通过学习方法为每个输入的3D非中性脸构建参考脸,它很好地代表了基本的脸部形状。然后,基于BFSC和原始表情面部,设计了面部表情描述符。在描述符中考虑了表面深度的变化。最后,将描述符输入到SVM中以识别表达式。与以前的借助手动标记的关键点和/或中性的面部识别面部表情的方法不同,我们的方法无需任何人工协助即可在单个3D面部上工作。在BU-3DFE数据库上进行了广泛的实验,并与现有方法进行了比较。实验结果表明了该方法的有效性。

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