A Hybrid Approach for Person Identification Using Palmprint and Face Biometrics

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World Scientific Publ Co Pte Ltd

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info:eu-repo/semantics/closedAccess

Abstract

This paper proposes hybrid approaches based on both feature level and score level fusion strategies to provide a robust recognition system against the distortions of individual modalities. In order to compare the proposed schemes, a virtual multimodal database is formed from FERET face and PolyU palmprint databases. The proposed hybrid systems concatenate features extracted by local and global feature extraction methods such as Local Binary Patterns, Log Gabor, Principal Component Analysis and Linear Discriminant Analysis. Match score level fusion is performed in order to show the effectiveness and accuracy of the proposed schemes. The experimental results based on these databases reported a significant improvement of the proposed schemes compared with unimodal systems and other multimodal face-palmprint fusion methods.

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Multimodal biometrics, face recognition, palmprint recognition, feature level fusion, match score level fusion

Journal or Series

International Journal of Pattern Recognition and Artificial Intelligence

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Volume

29

Issue

6

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