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2004 | OriginalPaper | Buchkapitel

Face Recognition with Local Binary Patterns

verfasst von : Timo Ahonen, Abdenour Hadid, Matti Pietikäinen

Erschienen in: Computer Vision - ECCV 2004

Verlag: Springer Berlin Heidelberg

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In this work, we present a novel approach to face recognition which considers both shape and texture information to represent face images. The face area is first divided into small regions from which Local Binary Pattern (LBP) histograms are extracted and concatenated into a single, spatially enhanced feature histogram efficiently representing the face image. The recognition is performed using a nearest neighbour classifier in the computed feature space with Chi square as a dissimilarity measure. Extensive experiments clearly show the superiority of the proposed scheme over all considered methods (PCA, Bayesian Intra/extrapersonal Classifier and Elastic Bunch Graph Matching) on FERET tests which include testing the robustness of the method against different facial expressions, lighting and aging of the subjects. In addition to its efficiency, the simplicity of the proposed method allows for very fast feature extraction.

Metadaten
Titel
Face Recognition with Local Binary Patterns
verfasst von
Timo Ahonen
Abdenour Hadid
Matti Pietikäinen
Copyright-Jahr
2004
Verlag
Springer Berlin Heidelberg
DOI
https://doi.org/10.1007/978-3-540-24670-1_36