DocumentCode :
1510162
Title :
Fingerprint classification by directional image partitioning
Author :
Cappelli, Raffaele ; Lumini, Alessandra ; Maio, Dario ; Maltoni, Davide
Author_Institution :
Corso di Laurea in Sci. dell´´Inf., Bologna Univ., Italy
Volume :
21
Issue :
5
fYear :
1999
fDate :
5/1/1999 12:00:00 AM
Firstpage :
402
Lastpage :
421
Abstract :
In this work, we introduce a new approach to automatic fingerprint classification. The directional image is partitioned into “homogeneous” connected regions according to the fingerprint topology, thus giving a synthetic representation which can be exploited as a basis for the classification. A set of dynamic masks, together with an optimization criterion, are used to guide the partitioning. The adaptation of the masks produces a numerical vector representing each fingerprint as a multidimensional point, which can be conceived as a continuous classification. Different search strategies are discussed to efficiently retrieve fingerprints both with continuous and exclusive classification. Experimental results have been given for the most commonly used fingerprint databases and the new method has been compared with other approaches known in the literature: As to fingerprint retrieval based on continuous classification, our method gives the best performance and exhibits a very high robustness
Keywords :
fingerprint identification; image segmentation; optimisation; topology; automatic fingerprint classification; continuous classification; directional image partitioning; dynamic masks; fingerprint topology; homogeneous connected regions; multidimensional point; numerical vector; optimization criterion; robustness; search strategies; Biometrics; Classification algorithms; Fingerprint recognition; Image databases; Image recognition; Information retrieval; Multidimensional systems; Partitioning algorithms; Robustness; Topology;
fLanguage :
English
Journal_Title :
Pattern Analysis and Machine Intelligence, IEEE Transactions on
Publisher :
ieee
ISSN :
0162-8828
Type :
jour
DOI :
10.1109/34.765653
Filename :
765653
Link To Document :
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