基于奇异点的指纹分类计算机系统

S. Javed, Anam Usman
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引用次数: 6

摘要

AFIS(自动指纹识别系统)是目前非常流行的生物识别安全技术。指纹分类是指纹识别的关键,也是指纹匹配的关键。提出了一种基于奇异点(核心点和增量点)检测的图像分类方法。该指纹分类技术包括四个步骤。首先,对输入指纹图像进行预处理(分割和归一化)。第二步,估计图像的精细定向场。第三步,利用改进的庞加莱指数技术定位奇异点。第四步,基于奇异点进行分类。在FVC2004数据库上进行了测试,结果表明该方法在减少误分类误差方面有明显的改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computerized system for fingerprint classification using singular points
AFIS (automated fingerprint identification system) is very popular now days for biometric security. Fingerprint classification plays a key role in identifying fingerprints and also helps in fingerprint matching. This paper presents a new classification technique based on the detection of singular points (core and delta points). This fingerprint classification technique consists of four steps. In the first step, preprocessing (segmentation and normalization) of input fingerprint image is done. In the second step, fine orientation field of image is estimated. In the third step, singular points are located using modified Poincare index technique. In the fourth step, classification is done on the basis of singular points. The proposed technique was tested on FVC2004 database and the results show a significant improvement in reducing the misclassification errors.
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