局部描述子特征及其在人耳识别中的鲁棒性分析

A. Morales, Miguel A. Ferrer, Moises Diaz-Cabrera, E. González
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引用次数: 14

摘要

近十年来,人耳识别引起了科学界的广泛关注。这种生物识别技术的优点包括远程采集,随着时间的推移形状和外观的永久性以及每个个体的相对独特性。本文重点研究了局部描述子特征在耳朵识别中的鲁棒性,并对两种有前途的技术进行了评价:SIFT和Dense-SIFT。实验包括两个公共数据库以及合成和真实遮挡。得到的结果表明,所提出的局部描述符在受控条件下具有良好的性能。然而,样本的扭曲和质量在很大程度上取决于受试者的合作水平。在与监视或取证相关的安全应用程序中,这种协作可能是无效的。在恶劣条件下的结果表明,在实际失真增大的情况下,这种特征的处理存在困难,同时也表明了进一步改进传统方法的必要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of local descriptors features and its robustness applied to ear recognition
In last ten years, ear recognition has attracted the interest of scientific community. The advantages of this biometric technology include the remote acquisition, permanence in shape and appearance along time and relatively uniqueness for each individual. This paper focuses on the robustness of local descriptors features for ear recognition and includes the evaluation of two promising techniques: SIFT and Dense-SIFT. The experiments include two public available databases as well as synthetic and real occlusion. The obtained results suggest the promising performance of the proposed local descriptors under controlled conditions. Nevertheless, the distortions and the quality of the sample are strongly determined by the level of collaboration of the subjects. In security applications related to surveillance or forensics such collaboration could be null. The results under hard conditions highlight the difficulties of such features in presence of elevate real distortion and the necessity of further improve the traditional approaches.
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