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Matching 3D face scans using interest points and local histogram descriptors

机译:使用兴趣点和局部直方图描述符匹配3D面部扫描

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摘要

In this work, we propose and experiment an original solution to 3D face recognition that supports face matching also in the case of probe scans with missing parts. In the proposed approach, distinguishing traits of the face are captured by first extracting 3D keypoints of the scan and then measuring how the face surface changes in the keypoints neighborhood using local shape descriptors. In particular: 3D keypoints detection relies on the adaptation to the case of 3D faces of the meshDOG algorithm that has been demonstrated to be effective for 3D keypoints extraction from generic objects; as 3D local descriptors we used the HOG descriptor and also proposed two alternative solutions that develop, respectively, on the histogram of orientations and the geometric histogram descriptors. Face similarity is evaluated by comparing local shape descriptors across inlier pairs of matching keypoints between probe and gallery scans. The face recognition accuracy of the approach has been first experimented on the difficult probes included in the new 2D/3D Florence face dataset that has been recently collected and released at the University of Firenze, and on the Binghamton University 3D facial expression dataset Then, a comprehensive comparative evaluation has been performed on the Bosphorus, Gavab and UND/FRGC v2.0 databases, where competitive results with respect to existing solutions for 3D face biometrics have been obtained.
机译:在这项工作中,我们提出并尝试了3D人脸识别的原始解决方案,该解决方案即使在缺少部分的探针扫描情况下也支持人脸匹配。在提出的方法中,通过首先提取扫描的3D关键点,然后使用局部形状描述符来测量脸部表面在关键点邻域中的变化,从而捕获面部的特征。特别是:3D关键点检测依赖于对meshDOG算法的3D面情况的适应性,该方法已被证明对从通用对象中提取3D关键点有效。作为3D局部描述符,我们使用了HOG描述符,还提出了两种替代解决方案,分别在方向的直方图和几何直方图描述符上开发。通过在探针扫描和画廊扫描之间的匹配关键字的不匹配对之间比较局部形状描述符来评估人脸相似性。该方法的面部识别精度首先是在新的2D / 3D Florence面部数据集中包含的困难探针上进行了实验,新的2D / 3D Florence面部数据集中在佛罗伦萨大学并在宾厄姆顿大学3D面部表情数据集中收集并发布。已在Bosphorus,Gavab和UND / FRGC v2.0数据库上进行了全面的比较评估,这些数据库在3D人脸生物识别的现有解决方案方面已获得竞争性结果。

著录项

  • 来源
    《Computers & Graphics》 |2013年第5期|509-525|共17页
  • 作者单位

    Department of Information Engineering, University of Firenze, Italy;

    Khalifa University of Science Technology & Research, Abu Dhabi, United Arab Emirates;

    Department of Information Engineering, University of Firenze, Italy;

    Department of Information Engineering, University of Firenze, Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    3D face recognition; 3D keypoints; 3D local descriptors;

    机译:3D人脸识别;3D关键点;3D局部描述符;

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