Fingerprint classification by directional fields

Sen Wang, Wei Zhang, Yangsheng Wang
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引用次数: 85

Abstract

Fingerprint classification provides an important fingerprint index and can reduce fingerprint matching time in a large database. A good classification algorithm can give an accurate index that is able to search a fingerprint database more effectively. We present a fingerprint classification algorithm that is based on directional fields. We compute directional fields of fingerprint images and detect singular points (cores). Then, we extract features that we define from fingerprint images. We also use k-means classifier and 3-nearest neighbor to classify features and distinguish which fingerprint is Arch, Left Loop, Right Loop, or Whorl. Experimental results show a significant improvement in fingerprint classification performance. Moreover, the time required for the classification algorithm is reduced.
基于方向场的指纹分类
指纹分类提供了重要的指纹索引,可以减少大型数据库中的指纹匹配时间。好的分类算法可以给出准确的索引,从而更有效地搜索指纹数据库。提出了一种基于方向场的指纹分类算法。我们计算了指纹图像的方向场,并检测了奇点(核心)。然后,我们从指纹图像中提取我们定义的特征。我们还使用k-means分类器和3-近邻对特征进行分类,并区分指纹是Arch、Left Loop、Right Loop还是whl。实验结果表明,该方法显著提高了指纹分类性能。此外,还减少了分类算法所需的时间。
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