DocumentCode :
3862493
Title :
Relative Position-Based Spatial Relationships using Mathematical Morphology
Author :
R. Gokberk Cinbis;Selim Aksoy
Author_Institution :
Department of Computer Engineering, Bilkent University, Bilkent, 06800, Ankara, Turkey
Volume :
2
fYear :
2007
Abstract :
Spatial information is a crucial aspect of image understanding for modeling context as well as resolving the uncertainties caused by the ambiguities in low-level features. We describe intuitive, flexible and efficient methods for modeling pairwise directional spatial relationships and the ternary between relation using fuzzy mathematical morphology. First, a fuzzy landscape is constructed where each point is assigned a value that quantifies its relative position according to the reference object(s) and the type of the relationship. Then, the degree of satisfaction of this relation by a target object is computed by integrating the corresponding landscape over the support of the target region. Our models support sensitivity to visibility to handle areas that are partially enclosed by objects and are not visible from image points along the direction of interest. They can also cope with the cases where one object is significantly spatially extended relative to others. Experiments using synthetic and real images show that our models produce more intuitive results than other techniques.
Keywords :
"Morphology","Layout","Mathematical model","Context modeling","Image retrieval","Histograms","Spatial resolution","Image resolution","Uncertainty","Fuzzy sets"
Publisher :
ieee
Conference_Titel :
Image Processing, 2007. ICIP 2007. IEEE International Conference on
ISSN :
1522-4880
Print_ISBN :
978-1-4244-1436-9
Electronic_ISBN :
2381-8549
Type :
conf
DOI :
10.1109/ICIP.2007.4379101
Filename :
4379101
Link To Document :
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