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Visible and Infrared Face Identification via Sparse Representation
2013
ISRN Machine Vision
We present a facial recognition technique based on facial sparse representation. A dictionary is learned from data, and patches extracted from a face are decomposed in a sparse manner onto this dictionary. We particularly focus on the design of dictionaries that play a crucial role in the final identification rates. Applied to various databases and modalities, we show that this approach gives interesting performances. We propose also a score fusion framework that allows quantifying the saliency
doi:10.1155/2013/579126
fatcat:z7z4ba3ipfekpkkhqedy2tycve