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Object detection using spatial histogram features

delete2006-04-01
delete86
PRE
AI
H
Hongming Zhang *
W
Wen Gao
陈
陈熙霖 (Xilin Chen)
D
Debin Zhao
DOI:10.1016/j.imavis.2005.11.010delete
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Abstract

Abstract

En 中文
In this paper, we propose an object detection approach using spatial histogram features. As spatial histograms consist of marginal distributions of an image over local patches, they can preserve texture and shape information of an object simultaneously. We employ Fisher criterion and mutual information to measure discriminability and features correlation of spatial histogram features. We further train a hierarchical classifier by combining cascade histogram matching and support vector machine. The cascade histogram matching is trained via automatically selected discriminative features. A forward sequential selection method is presented to construct uncorrelated and discriminative feature sets for support vector machine classification. We evaluate the proposed approach on two different kinds of objects: car and video text. Experimental results show that the proposed approach is efficient and robust in object detection. (c) 2006 Elsevier B.V. All rights reserved.
Keywords:
object detection
spatial histogram features
feature selection
histogram matching
support vector machine
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Journal

Image and Vision Computing cover
Image and Vision Computing
IF:
4.2
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