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Latent fingerprint enhancement via robust orientation field estimation

机译:通过鲁棒的定向场估计来增强潜在指纹

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Latent fingerprints, or simply latents, have been considered as cardinal evidence for identifying and convicting criminals. The amount of information available for identification from latents is often limited due to their poor quality, unclear ridge structure and occlusion with complex background or even other latent prints. We propose a latent fingerprint enhancement algorithm, which expects manually marked region of interest (ROI) and singular points. The core of the proposed algorithm is a robust orientation field estimation algorithm for latents. Short-time Fourier transform is used to obtain multiple orientation elements in each image block. This is followed by a hypothesize-and-test paradigm based on randomized RANSAC, which generates a set of hypothesized orientation fields. Experimental results on NIST SD27 latent fingerprint database show that the matching performance of a commercial matcher is significantly improved by utilizing the enhanced latent fingerprints produced by the proposed algorithm.
机译:潜在指纹或简单的潜在指纹已被视为识别和定罪的主要证据。由于潜质质量差,山脊结构不清晰,被复杂的背景或什至是其他潜伏的印迹所遮挡,因此可用于识别潜伏性信息的数量通常受到限制。我们提出了一种潜在的指纹增强算法,该算法期望手动标记感兴趣区域(ROI)和奇异点。所提出算法的核心是针对潜在性的鲁棒方向场估计算法。短时傅立叶变换用于获得每个图像块中的多个方向元素。随后是基于随机RANSAC的假设和测试范式,该范式生成了一组假设的取向场。在NIST SD27潜在指纹数据库上的实验结果表明,利用该算法产生的增​​强型潜在指纹,可以大大提高商业匹配器的匹配性能。

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