DocumentCode :
157970
Title :
Local inter-session variability modelling for object classification
Author :
Anantharajah, Kaneswaran ; ZongYuan Ge ; McCool, C. ; Denman, Simon ; Fookes, Clinton ; Corke, Peter ; Tjondronegoro, Dian ; Sridharan, Sridha
Author_Institution :
SAIVT & MILAB, QUT, Brisbane, QLD, Australia
fYear :
2014
fDate :
24-26 March 2014
Firstpage :
309
Lastpage :
316
Abstract :
Object classification is plagued by the issue of session variation. Session variation describes any variation that makes one instance of an object look different to another, for instance due to pose or illumination variation. Recent work in the challenging task of face verification has shown that session variability modelling provides a mechanism to overcome some of these limitations. However, for computer vision purposes, it has only been applied in the limited setting of face verification. In this paper we propose a local region based intersession variability (ISV) modelling approach, and apply it to challenging real-world data. We propose a region based session variability modelling approach so that local session variations can be modelled, termed Local ISV. We then demonstrate the efficacy of this technique on a challenging real-world fish image database which includes images taken underwater, providing significant real-world session variations. This Local ISV approach provides a relative performance improvement of, on average, 23% on the challenging MOBIO, Multi-PIE and SCface face databases. It also provides a relative performance improvement of 35% on our challenging fish image dataset.
Keywords :
computer vision; face recognition; image classification; object recognition; MOBIO face databases; SCface face databases; computer vision; face verification; illumination variation; local ISV modelling approach; local region based inter-session variability modelling approach; local session variations; multiPIE databases; object classification; real-world fish image database; Adaptation models; Covariance matrices; Databases; Face; Face recognition; Lighting; Protocols;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Applications of Computer Vision (WACV), 2014 IEEE Winter Conference on
Conference_Location :
Steamboat Springs, CO
Type :
conf
DOI :
10.1109/WACV.2014.6836084
Filename :
6836084
Link To Document :
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