DocumentCode :
1742927
Title :
Attributed tree homomorphism using association graphs
Author :
Bartoli, Massimo ; Pelillo, Marcello ; Siddiqi, Kaleem ; Zucker, Steven W.
Author_Institution :
Dipt. di Inf., Univ. Ca´´ Foscari di Venezia, Venezia Mestre, Italy
Volume :
2
fYear :
2000
fDate :
2000
Firstpage :
133
Abstract :
The matching of hierarchical relational structures is of significant interest in computer vision and pattern recognition. We have recently introduced a new solution to this problem, based on a maximum clique formulation in an (derived) “association graph”. This allows us to exploit the full arsenal of clique finding algorithms developed in the algorithm community. However, thus far we have only focussed on one-to-one correspondences (isomorphisms), which appears to be too strict a requirement for many vision problems. In this paper we provide a generalization of the association graph framework to handle many-to-one correspondences. We define a notion of an ε-homomorphism (a many-to-one mapping) between attributed trees, and provide a method of constructing a weighted association graph where maximal weight cliques are in one-to-one correspondence with maximal similarity subtree homomorphisms. We then solve the problem by using replicator dynamical systems from the evolutionary game theory
Keywords :
computer vision; game theory; graph theory; pattern matching; trees (mathematics); association graphs; attributed trees; computer vision; evolutionary game theory; homomorphism; maximum clique; pattern recognition; relational structure matching; Computational intelligence; Computer vision; Game theory; Machine intelligence; Object recognition; Pattern matching; Pattern recognition; Stereo vision; Tree graphs; Vegetation mapping;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Pattern Recognition, 2000. Proceedings. 15th International Conference on
Conference_Location :
Barcelona
ISSN :
1051-4651
Print_ISBN :
0-7695-0750-6
Type :
conf
DOI :
10.1109/ICPR.2000.906033
Filename :
906033
Link To Document :
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