部分指纹和全指纹的指纹识别算法

S. Mil'shtein, A. Pillai, A. Shendye, C. Liessner, M. Baier
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引用次数: 37

摘要

地方、州和联邦各级政府机构以及私人商业公司都迫切需要开发准确的生物特征识别系统。指纹识别是最实用、应用最广泛的生物识别技术。每个指纹的纹路和纹路都是独一无二的。基于细节的指纹认证算法被广泛应用于指纹认证中。该算法的一个重要部分是指纹的分类,它可以使每个识别过程中引用的指纹数量显著减少。然而,细部算法有一些严重的缺点。如果指纹的核心不可见,则无法进行识别。然而,在某些情况下,需要识别部分指纹。我们最近开发了一种新型的非接触式线扫描仪,用于识别指纹模式,将三维物体(如手指)转换为二维图像,失真最小。这种基于逐行扫描图像的新型成像技术需要开发一种新的识别算法。在本研究中,我们提出了两种新的算法。第一种算法称为间隔频变换算法(SFTA),该算法基于对图像进行快速傅里叶变换。第二种算法称为行扫描算法(LSA),用于比较部分指纹并减少比较完整指纹所需的时间。SFTA和LSA的结合提供了一种非常有效的识别技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fingerprint Recognition Algorithms for Partial and Full Fingerprints
An urgent need to develop accurate biometric recognition system is expressed by governmental agencies at the local, state, and federal levels, as well as by private commercial companies. Fingerprinting is the most practical and widely used biometric technique. The pattern of ridges and valleys of each fingerprint is unique. The minutiae based algorithm is widely used for fingerprint authentication. One of the significant parts of this algorithm is the classification of fingerprints which allows minimizing significantly the number of fingerprints referenced for each identification procedure. However, the minutiae algorithm has some serious drawbacks. If the core of a fingerprint is not visible, then identification cannot proceed. Yet in some cases, partial fingerprints need to be identified. We recently developed a novel contactless line scanner for recognition of fingerprint pattern that converts a three dimensional object like a finger into a two dimensional image with minimal distortion. This novel imaging technique based on a line by line scanned image required the development of a new recognition algorithm. In this study, we propose two new algorithms. The first algorithm, called the spaced frequency transformation algorithm (SFTA), is based on taking the fast Fourier transform of the images. The second algorithm, called the line scan algorithm (LSA), was developed to compare partial fingerprints and reduce the time taken to compare full fingerprints. A combination of SFTA and LSA provides a very efficient recognition technique.
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