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A novel approach to enhance automatic 3D facial expression recognition

机译:一种增强自动3D面部表情识别的新颖方法

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Researches on 3D facial expression recognition have been extensively promoted in recent years, yet automatic 3D facial expression recognition is still a challenging problem. In this paper, we propose an easy-handled approach to address this problem and consequently improve its performance. In the approach, a 2D-image-like structure is utilized to represent the 3D models so that we can automatically extract the facial features from either its depth values or the texture information. Then the feature-based irregular divisions are specially designed to depict the facial features more accurately. Finally, a novel block weighted strategy which emphasizes the contribution of different facial regions is additionally applied to enhance the facial descriptors for classification. Using the general protocol for 3D facial expression recognition on the BU-3DFE database, each of the steps is validated and the proposed approach displays comparative performance which draws a promising direction for automatic 3D facial expression recognition.
机译:近年来,对3D面部表情识别的研究得到了广泛的推动,但是自动3D面部表情识别仍然是一个具有挑战性的问题。在本文中,我们提出了一种易于处理的方法来解决此问题,从而提高其性能。在该方法中,采用了类似2D图像的结构来表示3D模型,因此我们可以从其深度值或纹理信息中自动提取面部特征。然后,基于特征的不规则分割经过特殊设计,可以更准确地描绘面部特征。最后,另外采用强调不同面部区域贡献的新颖块加权策略来增强用于分类的面部描述符。使用BU-3DFE数据库上用于3D面部表情识别的通用协议,对每个步骤进行了验证,所提出的方法显示了比较性能,这为自动3D面部表情识别提供了一个有希望的方向。

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