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Quality Induced Fingerprint Identification using Extended Feature Set

机译:使用扩展功能集的质量诱导指纹识别

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Automatic fingerprint identification systems use level-1 and level-2 features for fingerprint identification. However, forensic examiners utilize inherent level-3 details along with level-2 features. Existing level-3 feature extraction algorithms are computationally expensive to be used for identification. This paper presents a novel algorithm for fast level-3 feature extraction and identification. The algorithm starts with computing local image quality score using redundant discrete wavelet transform. A fast curve evolution algorithm is then used to extract four level-3 features namely, pores, ridge contours, dots, and incipient ridges. Along with level-1 and level-2 features, these level-3 features are used in a Delaunay triangulation based indexing algorithm. Finally, quality-based likelihood ratio is used to further improve the identification performance. Experiments conducted on a high resolution fingerprint database containing rolled, slap and latent images indicate that the algorithm offers significant benefits for fast fingerprint identification.
机译:自动指纹识别系统使用Level-1和Level-2功能,用于指纹识别。但是,法医审查员利用固有的水平-3细节以及2级功能。现有的Level-3特征提取算法是用于识别的计算昂贵。本文介绍了一种用于快速级别3特征提取和识别的新算法。该算法从计算本地图像质量分数使用冗余离散小波变换开始。然后使用快速曲线演化算法来提取四个级别-3,即孔,脊轮廓,点和初始脊。除了Level-1和Level-2功能之外,这些Level-3功能用于基于Delaunay三角测量的索引算法。最后,基于质量的似然比用于进一步提高识别性能。在包含滚动,振动和潜在图像的高分辨率指纹数据库上进行的实验表明该算法为快速指纹识别提供了显着的好处。

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