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Effects on Facial Expression in 3D Face Recognition

机译:在3D人脸识别中对面部表情的影响

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This is the first study to compare the PCA and ICP approaches to 3D face recognition, and to propose a local region approach coping with expression variation in 3D face recognition. A new algorithm for 3D face recognition is proposed for handling expression variation. It uses a surface registration-based technique for 3D face recognition. The proposed method uses a fully automatic approach to use to initialize the 3D matching. Results are presented for gallery and probe datasets of 355 subjects imaged in 3D, with significant time lapse between gallery and probe images of a given subject yielding 3,205 3D models. We find that an ICP-based method performs better than a PCA-based method. The evaluation results show that our proposed new algorithm substantially improves performance in the case of varying facial expression. We also examined subject factors in the proposed method on 3D face models by age and gender.
机译:这是第一项比较PCA和ICP方法与3D人脸识别的研究,并提出了一种应对3D人脸识别中的表情变化的局部方法。提出了一种用于处理表情变化的3D人脸识别新算法。它使用基于表面配准的技术进行3D人脸识别。所提出的方法使用全自动方法来初始化3D匹配。呈现了3D成像的355个对象的画廊和探针数据集的结果,给定对象的画廊和探针图像之间有明显的时间间隔,产生了3205个3D模型。我们发现基于ICP的方法比基于PCA的方法性能更好。评估结果表明,在面部表情变化的情况下,我们提出的新算法大大提高了性能。我们还按年龄和性别检查了3D人脸模型中建议方法中的主题因素。

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