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📄 Journal Article

Hand-Geometry Recognition Using Entropy-Based Discretization

June 01, 2007 66 citations 🔓 Green IEEE Transactions on Information Forensics and Security
66
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2
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26
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Abstract

The hand-geometry-based recognition systems proposed in the literature have not yet exploited user-specific dependencies in the feature-level representation. We investigate the possibilities to improve the performance of the existing hand-geometry systems using the discretization of extracted features. This paper proposes employing discretization of hand-geometry features, using entropy-based heuristics, to achieve the performance improvement. The performance improvement due to the unsupervised and supervised discretization schemes is compared on a variety of classifiers: k-NN, naive Bayes, SVM, and FFN. Our experimental results on the database of 100 users achieve significant improvement in the recognition accuracy and confirm the usefulness of discretization in hand-geometry-based systems

Authors (2) 1 from IIT Delhi
Publication Details
TypeJournal Article
PublishedJune 01, 2007
Source IEEE Transactions on Information Forensics and Security
PublisherInstitute of Electrical and Electronics Engineers
Volume/Issue Vol. 2 , Issue 2 , pp. 181-187
DOI 10.1109/tifs.2007.896915
OpenAlex ID W2123409059
Open Accessgreen Access Free PDF