Filter Design Based on Spectral Dictionary for Latent Fingerprint Pre-enhancement

Watcharapong Chaidee, K. Horapong, V. Areekul
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引用次数: 11

Abstract

We introduce a pre-enhancement algorithm to improve efficiency of the automatic fingerprint identification systems (AFIS) for latent fingerprint search. The proposed algorithm employs learning to construct a spectral dictionary from spectral responses of a Gabor filter bank in the frequency domain. Given an input latent fingerprint, the spectral dictionary yields a set of appropriate filters for each partitioning window of the entire latent fingerprint image. The proposed set of spectral filters helps improve and preserve highly-curved ridges in region around the singular point, while the other methods fail. The proposed method outperforms state-of-the-art algorithms in identification accuracy with the good and bad cases of the NIST SD27 latent fingerprint database.
基于谱字典的潜在指纹预增强滤波器设计
为了提高自动指纹识别系统对潜在指纹的搜索效率,提出了一种预增强算法。该算法采用学习的方法,从频域Gabor滤波器组的频谱响应中构建一个频谱字典。给定一个输入潜在指纹,光谱字典为整个潜在指纹图像的每个划分窗口产生一组适当的滤波器。所提出的一组光谱滤波器有助于改善和保留奇点周围区域的高弯曲脊,而其他方法则失败。在NIST SD27潜在指纹数据库的好坏情况下,所提出的方法在识别精度方面优于最先进的算法。
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