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A Fingerprint Orientation Model Based on 2D Fourier Expansion (FOMFE) and Its Application to Singular-Point Detection and Fingerprint Indexing

机译:基于二维傅立叶展开(FOMFE)的指纹定位模型及其在奇异点检测和指纹索引中的应用

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摘要

In this paper, we have proposed a fingerprint orientation model based on 2D Fourier expansions (FOMFE) in the phase plane. The FOMFE does not require prior knowledge of singular points (SPs). It is able to describe the overall ridge topology seamlessly, including the SP regions, even for noisy fingerprints. Our statistical experiments on a public database show that the proposed FOMFE can significantly improve the accuracy of fingerprint feature extraction and thus that of fingerprint matching. Moreover, the FOMFE has a low-computational cost and can work very efficiently on large fingerprint databases. The FOMFE provides a comprehensive description for orientation features, which has enabled its beneficial use in feature-related applications such as fingerprint indexing. Unlike most indexing schemes using raw orientation data, we exploit FOMFE model coefficients to generate the feature vector. Our indexing experiments show remarkable results using different fingerprint databases
机译:在本文中,我们提出了一种基于相平面中二维傅立叶展开(FOMFE)的指纹取向模型。 FOMFE不需要先验奇点(SP)。它能够无缝描述整个脊形拓扑,包括SP区域,即使是嘈杂的指纹。我们在公共数据库上的统计实验表明,提出的FOMFE可以显着提高指纹特征提取的准确性,从而提高指纹匹配的准确性。而且,FOMFE具有低计算成本,并且可以在大型指纹数据库上非常有效地工作。 FOMFE提供了有关方向特征的全面描述,从而使其能够在与特征相关的应用程序(例如指纹索引)中得到有益的使用。与大多数使用原始方向数据的索引方案不同,我们利用FOMFE模型系数来生成特征向量。我们的索引实验显示了使用不同指纹数据库的出色结果

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