Fingerprint classification based on continuous orientation field and singular points

Xiuyou Wang, Feng Wang, Jianzhong Fan, Jiwen Wang
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引用次数: 22

Abstract

Fingerprint classification is crucial to reduce the processing time in a large-scale database. In this paper a fingerprint classification based on continuous orientation field and singular points is proposed. The continuous orientation field can not only filter the noises in point directional image,but also represent the basic structural feature of fingerprint more precisely.Singularities are the most important and reliable feature in classification.The reliable and fast classification algorithm is made possible by a simple but effective combination of continuous orientation field and the modified Poincare index in the determination of singular points.The experiment results show the effectiveness of the proposed method in producing good classification result.
基于连续方向场和奇异点的指纹分类
在大规模数据库中,指纹分类对于减少处理时间至关重要。提出了一种基于连续方向场和奇异点的指纹分类方法。连续方向场不仅能过滤点方向图像中的噪声,而且能更准确地反映指纹的基本结构特征。奇异性是分类中最重要、最可靠的特征。将连续方向场与改进的庞加莱指数简单而有效地结合起来确定奇异点,实现了可靠、快速的分类算法。实验结果表明,该方法具有较好的分类效果。
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