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Robust 2D Ear Registration and Recognition Based on SIFT Point Matching

机译:基于筛选点匹配的强大的2D耳注册和识别

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Significant recent progress has shown ear recognition to be a viable biometric. Good recognition rates have been demonstrated under controlled conditions, using manual registration or with specialised equipment. This paper describes a new technique which improves the robustness of ear registration and recognition, addressing issues of pose variation, background clutter and occlusion. By treating the ear as a planar surface and creating a homography transform using SIFT feature matches, ears can be registered accurately. The feature matches reduce the gallery size and enable a precise ranking using a simple 2D distance algorithm. When applied to the XM2VTS database it gives results comparable to PCA with manual registration. Further analysis on more challenging datasets demonstrates the technique to be robust to background clutter, viewing angles up to ?±13 degrees and with over 20% occlusion.
机译:最近的最近进展显示出耳朵识别是一种可行的生物识别。良好的识别率已经在受控条件下进行了说明,使用手动注册或使用专用设备。本文介绍了一种提高耳输登记和识别的鲁棒性,解决姿势变异,背景杂波和闭塞问题的新技术。通过将耳朵视为平面表面并使用SIFT功能匹配创建配合变换,可以准确注册耳朵。该功能匹配缩短了Gallery大小并使用简单的2D距离算法启用精确排名。当应用于XM2VTS数据库时,它会使与手动注册的PCA相媲美。进一步分析更具挑战性的数据集,证明了对背景杂波具有鲁棒的技术,观察到±13度,并且闭塞超过20%。

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