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An information-theoretic approach to face recognition from face motion manifolds

journal contribution
posted on 2006-01-01, 00:00 authored by Ognjen Arandjelovic, R Cipolla
In this work, we consider face recognition from face motion manifolds (FMMs). The use of the resistor-average distance (RAD) as a dissimilarity measure between densities confined to FMMs is motivated in the proposed information-theoretic approach to modelling face appearance. We introduce a kernel-based algorithm that makes use of the simplicity of the closed-form expression for RAD between two Gaussian densities, while allowing for modelling of complex and nonlinear, but intrinsically low-dimensional manifolds. Additionally, it is shown how geodesically local FMM structure can be modelled, naturally leading to a stochastic algorithm for generalizing to unseen modes of data variation. Recognition performance of our method is demonstrated experimentally and is shown to exceed that of state-of-the-art algorithms. Recognition rate of 98% was achieved on a database of 100 people under varying illumination

History

Journal

Image and vision computing : face processing on video

Volume

24

Issue

6

Pagination

639 - 647

Publisher

Elsevier BV

Location

Amsterdam, The Netherlands

ISSN

0262-8856

eISSN

1872-8138

Language

eng

Publication classification

C1.1 Refereed article in a scholarly journal

Copyright notice

2006, Elsevier

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