Literature DB >> 18195433

Fast asymmetric learning for cascade face detection.

Jianxin Wu1, S Charles Brubaker, Matthew D Mullin, James M Rehg.   

Abstract

A cascade face detector uses a sequence of node classifiers to distinguish faces from non-faces. This paper presents a new approach to design node classifiers in the cascade detector. Previous methods used machine learning algorithms that simultaneously select features and form ensemble classifiers. We argue that if these two parts are decoupled, we have the freedom to design a classifier that explicitly addresses the difficulties caused by the asymmetric learning goal. There are three contributions in this paper. The first is a categorization of asymmetries in the learning goal, and why they make face detection hard. The second is the Forward Feature Selection (FFS) algorithm and a fast pre- omputing strategy for AdaBoost. FFS and the fast AdaBoost can reduce the training time by approximately 100 and 50 times, in comparison to a naive implementation of the AdaBoost feature selection method. The last contribution is Linear Asymmetric Classifier (LAC), a classifier that explicitly handles the asymmetric learning goal as a well-defined constrained optimization problem. We demonstrated experimentally that LAC results in improved ensemble classifier performance.

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Year:  2008        PMID: 18195433     DOI: 10.1109/TPAMI.2007.1181

Source DB:  PubMed          Journal:  IEEE Trans Pattern Anal Mach Intell        ISSN: 0098-5589            Impact factor:   6.226


  2 in total

1.  A supervised classification-based method for coronary calcium detection in non-contrast CT.

Authors:  Uday Kurkure; Deepak R Chittajallu; Gerd Brunner; Yen H Le; Ioannis A Kakadiaris
Journal:  Int J Cardiovasc Imaging       Date:  2010-03-14       Impact factor: 2.357

2.  Features versus context: An approach for precise and detailed detection and delineation of faces and facial features.

Authors:  Liya Ding; Aleix M Martinez
Journal:  IEEE Trans Pattern Anal Mach Intell       Date:  2010-11       Impact factor: 6.226

  2 in total

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