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A fingerprint matching algorithm based on alignment using LPD and GCD minutia descriptors

机译:一种基于LPD和GCD Minutia描述符对齐的指纹匹配算法

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Although various algorithms have been proposed, accurate fingerprint matching remains an unresolved problem. This paper describes a minutiae based fingerprint matching algorithm that uses minutia descriptors to help finding the optimal global transformation between two different fingerprints quickly. Two different minutia descriptors, the local patch descriptor (LPD) and the geometrical configuration descriptor (GCD), are used in this paper. A small set of matched pairs between two different fingerprints are found first based on these minutia descriptors. A rough global transformation will be found in these small set of matched pairs by RANSAC algorithm, then a proposed method of verifying the matching result is applied to filter matched pairs that extracted from RANSAC algorithm. The final global transformation will be overdetermined by the filtered matched pairs. The matching result will be calculated by the final global transformation. Experimental results show that the occurrence of misalignment is dramatically reduced and that matching accuracy is improved at the same time.
机译:虽然已经提出了各种算法,但准确的指纹匹配仍然是未解决的问题。本文介绍了一种基于细节的指纹匹配算法,它使用MENUTIA描述符来帮助快速找到两个不同指纹之间的最佳全局转换。本文使用了两种不同的MeNutia描述符,本地补丁描述符(LPD)和几何配置描述符(GCD)。首先基于这些MeNutia描述符在两个不同的指纹之间进行一小一小组匹配对。将在这些小集匹配对中通过RANSAC算法进行粗略的全局转换,然后应用了验证匹配结果的建议方法,以筛选从Ransac算法中提取的匹配对。过滤的匹配对将过度确定最终的全局转换。匹配结果将通过最终的全局转换计算。实验结果表明,未对准的发生显着降低,同时改善了匹配的精度。

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