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Hog active appearance models

Authors :
Antonakos, Epameinondas
Alabort-i-Medina, Joan
Tzimiropoulos, Georgios
Zafeiriou, Stefanos
Antonakos, Epameinondas
Alabort-i-Medina, Joan
Tzimiropoulos, Georgios
Zafeiriou, Stefanos

Abstract

We propose the combination of dense Histogram of Oriented Gradients (HOG) features with Active Appearance Models (AAMs). We employ the efficient Inverse Compositional optimization technique and show results for the task of face fitting. By taking advantage of the descriptive characteristics of HOG features, we build robust and accurate AAMs that generalize well to unseen faces with illumination, identity, pose and occlusion variations. Our experiments on challenging in-the-wild databases show that HOG AAMs significantly outperfrom current state-of-the-art results of discriminative methods trained on larger databases.

Details

Database :
OAIster
Publication Type :
Electronic Resource
Accession number :
edsoai.on1312857272
Document Type :
Electronic Resource