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Proceedings ArticleDOI

Quality Induced Fingerprint Identification using Extended Feature Set

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TLDR
Experiments conducted on a high resolution fingerprint database containing rolled, slap and latent images indicate that the novel algorithm presented offers significant benefits for fast fingerprint identification.
Abstract
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.

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Citations
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Journal ArticleDOI

A novel pore extraction method for heterogeneous fingerprint images using Convolutional Neural Networks

TL;DR: This paper proposes the first method in the literature able to extract the coordinates of the pores from touch-based, touchless, and latent fingerprint images, and uses specifically designed and trained Convolutional Neural Networks to estimate and refine the centroid of each pore.
Journal ArticleDOI

Latent Fingerprint Matching: A Survey

TL;DR: The process of automatic latent fingerprint matching is divided into five definite stages, and the existing algorithms, limitations, and future research directions in each of the stages are discussed.
Journal ArticleDOI

On the Dynamic Selection of Biometric Fusion Algorithms

TL;DR: The design of a sequential fusion technique that uses the likelihood ratio test-statistic in conjunction with a support vector machine classifier to account for errors in the former and a dynamic selection algorithm that unifies the constituent classifiers and fusion schemes in order to optimize both verification accuracy and computational cost is proposed.
Proceedings ArticleDOI

On latent fingerprint minutiae extraction using stacked denoising sparse AutoEncoders

TL;DR: A novel descriptor based minutiae detection algorithm for latent fingerprints that shows promising results on latent fingerprint matching on the NIST SD-27 database.
Journal ArticleDOI

Automated latent fingerprint identification system: A review.

TL;DR: An extensive review of the work done by eminent researchers in the development of an automated latent fingerprint identification system is provided.
References
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Journal ArticleDOI

Quality-augmented fusion of level-2 and level-3 fingerprint information using DSm theory

TL;DR: The proposed plausible and paradoxical reasoning approach effectively mitigates conflicting decisions obtained from classifiers especially when the evidences are imprecise due to poor image quality or limited fingerprint features.
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