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Fingerprint Matching Incorporating Ridge Features With Minutiae

机译:指纹匹配结合了脊线特征和细节

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摘要

This paper introduces a novel fingerprint matching algorithm using both ridge features and the conventional minutiae feature to increase the recognition performance against nonlinear deformation in fingerprints. The proposed ridge features are composed of four elements: ridge count, ridge length, ridge curvature direction, and ridge type. These ridge features have some advantages in that they can represent the topology information in entire ridge patterns existing between two minutiae and are not changed by nonlinear deformation of the finger. For extracting ridge features, we also define the ridge-based coordinate system in a skeletonized image. With the proposed ridge features and conventional minutiae features (minutiae type, orientation, and position), we propose a novel matching scheme using a breadth-first search to detect the matched minutiae pairs incrementally. Following that, the maximum score is computed and used as the final matching score of two fingerprints. Experiments were conducted for the FVC2002 and FVC2004 databases to compare the proposed method with the conventional minutiae-based method. The proposed method achieved higher matching scores. Thus, we conclude that the proposed ridge feature gives additional information for fingerprint matching with little increment in template size and can be used in conjunction with existing minutiae features to increase the accuracy and robustness of fingerprint recognition systems.
机译:本文介绍了一种同时使用脊特征和常规细节特征的新型指纹匹配算法,以提高针对指纹非线性变形的识别性能。提出的山脊特征由四个元素组成:山脊数量,山脊长度,山脊曲率方向和山脊类型。这些隆起特征具有一些优势,因为它们可以表示存在于两个细节之间的整个隆起样式中的拓扑信息,并且不会因手指的非线性变形而改变。为了提取山脊特征,我们还在骨架图像中定义了基于山脊的坐标系。通过提出的脊特征和常规的细节特征(细节类型,方向和位置),我们提出了一种新的匹配方案,该算法使用广度优先搜索来逐步检测匹配的细节对。随后,计算最大分数并将其用作两个指纹的最终匹配分数。对FVC2002和FVC2004数据库进行了实验,以将建议的方法与基于常规细节的方法进行比较。所提出的方法获得了更高的匹配分数。因此,我们得出的结论是,提出的脊特征提供了指纹匹配的附加信息,模板大小几乎没有增加,并且可以与现有的细部特征结合使用,以提高指纹识别系统的准确性和鲁棒性。

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