De-noising Slap Fingerprint Images for Accurate Slap Fingerprint Segmentation

N. P. Ramaiah, C. Mohan
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引用次数: 9

Abstract

Fingerprints have unique properties like distinctiveness and persistence. Sometimes, fingerprint images can have some noisy data while capturing them using slap fingerprint scanners. This noise causes improper slap fingerprint segmentation due to which the performance of fingerprint matching decreases. The process of eliminating duplicates is called de-duplication which requires the plain quality fingerprints. While doing the segmentation of slap fingerprints, some of the fingerprint images are improperly segmented because of the noise present in the data. In this paper, an attempt is made to remove the noise present in the slap fingerprint data using binarization of slap fingerprint image, and region labeling of desired regions with 8-adjacency neighborhood for accurate slap fingerprint segmentation. Experimental results demonstrate that the fingerprint segmentation rate is improved from 78% to 99%.
基于去噪方法的拍打指纹图像分割
指纹具有独特性和持久性等独特属性。有时,指纹图像在使用拍打指纹扫描仪捕获时可能会有一些噪声数据。这种噪声会导致拍打指纹分割不当,从而降低指纹匹配的性能。消除重复的过程称为去重复,这需要普通质量的指纹。在对巴掌指纹进行分割时,由于数据中存在噪声,导致部分指纹图像分割不正确。本文尝试对拍打指纹图像进行二值化处理,并用8邻接邻域对所需区域进行区域标记,去除拍打指纹数据中的噪声,实现准确的拍打指纹分割。实验结果表明,该方法将指纹分割率从78%提高到99%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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