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A 3D Face Recognition System for Expression and Occlusion Invariance

机译:表达和遮挡不变性的3D面部识别系统

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Facial expression variations and occlusions complicate the task of identifying persons from their 3D facial scans. We propose a new 3D face registration and recognition method based on local facial regions that is able to provide better accuracy in the presence of expression variations and facial occlusions. Proposed fast and flexible alignment method uses average regional models (ARMs), where local correspondences are inferred by the Iterative Closest Point (ICP) algorithm. Dissimilarity scores obtained from local regional matchers are fused to robustly identify probe subjects. In this work, a multi-expression 3D face database, Bosphorus 3D face database, that contains significant amount of different expression types and realistic facial occlusion is used for identification experiments. The experimental results on this challenging database demonstrate that the proposed system improves the performance of the standard ICP-based holistic approach (71.39%) by obtaining 95.87% identification rate in the case of expression variations. When facial occlusions are present, the performance gain is even better. Identification rate improves from 47.05% to 94.12%.
机译:面部表情变化和闭塞使识别3D面部扫描的人员复杂化。我们提出了一种基于局部面部区域的新的3D面部注册和识别方法,能够在表达变化和面部闭合存在下提供更好的准确性。提出的快速和灵活的对准方法使用平均区域模型(武器),其中迭代最近点(ICP)算法推断出本地对应。从局部区域匹配者获得的异化分数融合以强大地识别探针受试者。在这项工作中,使用多表达式3D面部数据库Bosphorus 3D面部数据库,其包含大量不同的表达类型和现实面部闭塞用于识别实验。该具有挑战性数据库的实验结果表明,所提出的系统通过在表达变化的情况下获得95.87%的识别率来提高标准ICP的整体方法(71.39%)的性能。当存在面部闭合时,性能增益更好。识别率从47.05%提高至94.12%。

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