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Matching with PROSAC - progressive sample consensus
Chum, O.   Matas, J.  
Dept. of Cybern., Czech Tech. Univ., Prague, Czech Republic;

This paper appears in: Computer Vision and Pattern Recognition, 2005. CVPR 2005. IEEE Computer Society Conference on
Publication Date: 20-25 June 2005
Volume: 1,  On page(s): 220- 226 vol. 1
ISSN: 1063-6919
ISBN: 0-7695-2372-2
INSPEC Accession Number: 8588877
Digital Object Identifier: 10.1109/CVPR.2005.221
Current Version Published: 2005-07-25

Abstract
A new robust matching method is proposed. The progressive sample consensus (PROSAC) algorithm exploits the linear ordering defined on the set of correspondences by a similarity function used in establishing tentative correspondences. Unlike RANSAC, which treats all correspondences equally and draws random samples uniformly from the full set, PROSAC samples are drawn from progressively larger sets of top-ranked correspondences. Under the mild assumption that the similarity measure predicts correctness of a match better than random guessing, we show that PROSAC achieves large computational savings. Experiments demonstrate it is often significantly faster (up to more than hundred times) than RANSAC. For the derived size of the sampled set of correspondences as a function of the number of samples already drawn, PROSAC converges towards RANSAC in the worst case. The power of the method is demonstrated on wide-baseline matching problems.

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