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Orientation Field Estimation for Latent Fingerprint Enhancement

机译:潜在指纹增强的方向场估计

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Identifying latent fingerprints is of vital importance for law enforcement agencies to apprehend criminals and terrorists. Compared to live-scan and inked fingerprints, the image quality of latent fingerprints is much lower, with complex image background, unclear ridge structure, and even overlapping patterns. A robust orientation field estimation algorithm is indispensable for enhancing and recognizing poor quality latents. However, conventional orientation field estimation algorithms, which can satisfactorily process most live-scan and inked fingerprints, do not provide acceptable results for most latents. We believe that a major limitation of conventional algorithms is that they do not utilize prior knowledge of the ridge structure in fingerprints. Inspired by spelling correction techniques in natural language processing, we propose a novel fingerprint orientation field estimation algorithm based on prior knowledge of fingerprint structure. We represent prior knowledge of fingerprints using a dictionary of reference orientation patches. which is constructed using a set of true orientation fields, and the compatibility constraint between neighboring orientation patches. Orientation field estimation for latents is posed as an energy minimization problem, which is solved by loopy belief propagation. Experimental results on the challenging NIST SD27 latent fingerprint database and an overlapped latent fingerprint database demonstrate the advantages of the proposed orientation field estimation algorithm over conventional algorithms.
机译:识别潜在指纹对于执法机构逮捕罪犯和恐怖分子至关重要。与实时扫描和墨迹指纹相比,潜在指纹的图像质量要低得多,图像背景复杂,脊结构不清楚,甚至图案重叠。鲁棒的方向场估计算法对于增强和识别质量较差的潜伏必不可少。但是,传统的方向场估计算法不能令人满意地为大多数潜像提供令人满意的结果,该算法可以令人满意地处理大多数实时扫描和着墨的指纹。我们认为,传统算法的主要局限性在于它们没有利用指纹中脊结构的先验知识。受自然语言处理中拼写校正技术的启发,我们提出了一种基于指纹结构先验知识的新型指纹方向场估计算法。我们使用参考方向补丁字典来表示指纹的先验知识。它是使用一组真实的方向字段以及相邻方向补丁之间的兼容性约束构造的。潜在的定向场估计是一个能量最小化问题,可以通过循环的信念传播来解决。在具有挑战性的NIST SD27潜在指纹数据库和重叠的潜在指纹数据库上进行的实验结果证明了所提出的方向场估计算法优于传统算法的优势。

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