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Learning Fingerprint Reconstruction: From Minutiae to Image

机译:学习指纹重建:从细节到图像

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摘要

The set of minutia points is considered to be the most distinctive feature for fingerprint representation and is widely used in fingerprint matching. It was believed that the minutiae set does not contain sufficient information to reconstruct the original fingerprint image from which minutiae were extracted. However, recent studies have shown that it is indeed possible to reconstruct fingerprint images from their minutiae representations. Reconstruction techniques demonstrate the need for securing fingerprint templates, improving the template interoperability, and improving fingerprint synthesis. But, there is still a large gap between the matching performance obtained from original fingerprint images and their corresponding reconstructed fingerprint images. In this paper, the prior knowledge about fingerprint ridge structures is encoded in terms of orientation patch and continuous phase patch dictionaries to improve the fingerprint reconstruction. The orientation patch dictionary is used to reconstruct the orientation field from minutiae, while the continuous phase patch dictionary is used to reconstruct the ridge pattern. Experimental results on three public domain databases (FVC2002 DB1_A, FVC2002 DB2_A, and NIST SD4) demonstrate that the proposed reconstruction algorithm outperforms the state-of-the-art reconstruction algorithms in terms of both: 1) spurious minutiae and 2) matching performance with respect to type-I attack (matching the reconstructed fingerprint against the same impression from which minutiae set was extracted) and type-II attack (matching the reconstructed fingerprint against a different impression of the same finger).
机译:细节点集被认为是指纹表示的最独特特征,并且广泛用于指纹匹配。可以相信,细节集集不包含足够的信息来重建提取出细节的原始指纹图像。但是,最近的研究表明,确实有可能根据其细节表示来重建指纹图像。重建技术表明需要保护指纹模板,改善模板的互操作性并改善指纹合成。但是,从原始指纹图像获得的匹配性能与其对应的重构指纹图像之间的匹配性能仍然存在较大差距。在本文中,关于指纹脊结构的先验知识是根据方向补丁和连续相位补丁字典进行编码的,以改善指纹重建。方向补丁字典用于从细节中重建方向场,而连续相位补丁字典用于重建脊状图案。在三个公共领域数据库(FVC2002 DB1_A,FVC2002 DB2_A和NIST SD4)上的实验结果表明,所提出的重建算法在以下方面均优于最新的重建算法:1)虚假细节和2)匹配性能与I型攻击(将重建的指纹与提取细节集的相同印象匹配)和II型攻击(将重建的指纹与同一手指的不同印象匹配)。

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