DocumentCode :
2530264
Title :
Learning Categorical Shape from Captioned Images
Author :
Lee, Tom S H ; Fidler, Sanja ; Levinshtein, Alex ; Dickinson, Sven
Author_Institution :
Dept. of Comput. Sci., Univ. of Toronto, Toronto, ON, Canada
fYear :
2012
fDate :
28-30 May 2012
Firstpage :
228
Lastpage :
235
Abstract :
Given a set of captioned images of cluttered scenes containing various objects in different positions and scales, we learn named contour models of object categories without relying on bounding box annotation. We extend a recent language-vision integration framework that finds spatial configurations of image features that co-occur with words in image captions. By substituting appearance features with local contour features, object categories are recognized by a contour model that grows along the object´s boundary. Experiments on ETHZ are presented to show that 1) the extended framework is better able to learn named visual categories whose within-class variation is better captured by a shape model than an appearance model, and 2) typical object recognition methods fail when manually annotated bounding boxes are unavailable.
Keywords :
feature extraction; image classification; image retrieval; natural scenes; object recognition; ETHZ; appearance features; captioned images; categorical shape learning; cluttered scenes; contour model; image captions; image features; language-vision integration framework; local contour features; manually annotated bounding box; named contour model; named visual categories; object categories; object recognition method; shape model; spatial configurations; within-class variation; Feature extraction; Image edge detection; Image segmentation; Search problems; Shape; Training; Visualization; Image annotation; Language-Vision integration; Object categorization; Perceptual grouping; Semi-supervised shape learning;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer and Robot Vision (CRV), 2012 Ninth Conference on
Conference_Location :
Toronto, ON
Print_ISBN :
978-1-4673-1271-4
Type :
conf
DOI :
10.1109/CRV.2012.37
Filename :
6233146
Link To Document :
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