DocumentCode :
2462789
Title :
Learning object recognition models from images
Author :
Pope, Arthur R. ; Lowe, David G.
Author_Institution :
Dept. of Comput. Sci., British Columbia Univ., Vancouver, BC, Canada
fYear :
1993
fDate :
11-14 May 1993
Firstpage :
296
Lastpage :
301
Abstract :
To recognize an object in an image an internal model is required to indicate how that object may appear. The authors show how to learn such a model from a series of training images depicting a class of objects, producing a model that represents a probability distribution over the variation in object appearance. Features identified in an image through perceptual organization are represented by a graph whose nodes include feature labels and numeric measurements. A learning procedure generalizes multiple image graphs to form a model graph in which the numeric measurements are characterized by probability distributions. A matching procedure, using a similarity metric based on a non-parametric probability density estimator, compares model and image graphs to identify an instance of a modeled object in an image. Experimental results are presented from a system constructed to test this approach. The system learns to recognize partially occluded 2-D objects in 2-D images using shape cues. It can recognize objects as similar in general appearance while distinguishing them by their detailed features
Keywords :
computer vision; feature extraction; image recognition; learning (artificial intelligence); object recognition; 2-D images; feature labels; matching procedure; model graph; multiple image graphs; numeric measurements; object appearance; object recognition models learning; partially occluded 2-D objects; perceptual organization; probability density estimator; probability distribution; probability distributions; shape cues; similarity metric; training images; Cameras; Computer science; Face recognition; Image recognition; Learning systems; Noise shaping; Object recognition; Probability distribution; Shape; System testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Vision, 1993. Proceedings., Fourth International Conference on
Conference_Location :
Berlin
Print_ISBN :
0-8186-3870-2
Type :
conf
DOI :
10.1109/ICCV.1993.378202
Filename :
378202
Link To Document :
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