指纹匹配使用双希尔伯特扫描

Li Tian, Liang Chen, S. Kamata
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引用次数: 17

摘要

本文提出了一种基于双希尔伯特扫描的指纹匹配算法。我们将指纹匹配视为点模式匹配问题,希尔伯特扫描用于匹配问题的两个方面:一个用于相似度度量,另一个用于搜索空间约简。希尔伯特扫描距离(Hilbert Scanning Distance, HSD)是利用希尔伯特扫描将二维图像的二维坐标转换为一维空间信息,从而快速计算出相似测度。另一方面,可以将三维搜索空间转换为一维搜索空间序列。该方法已在FVC2002数据库上进行了测试。实验结果表明,该方法可以鲁棒、高效地实现指纹匹配。我们的算法通常使用的性能评估EER(等错误率)很低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fingerprint Matching Using Dual Hilbert Scans
A new fingerprint matching algorithm using dual Hilbert scans is presented in this study. We treat the fingerprint matching as point pattern matching problem and Hilbert scans are used in two aspects of the matching problem: one is applied to the similarity measure and the other is used in search space reduction. The similarity measure named Hilbert Scanning Distance (HSD) can be computed fast by converting the 2-D coordinates of 2-D images into 1-D space information using Hilbert scan. On the other hand, the 3-D search space can be converted to a 1-D search space sequence. The proposed method has been tested on FVC2002 database. The experimental results show that our method can implement fingerprint matching robustly and efficiently. The performance evaluation EER (Equal-Error Rate) generally used is very low by our algorithm.
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