DocumentCode
2500584
Title
Comparison of multiscale representations for a linking-based image segmentation model
Author
Niessen, Wiro J. ; Vincken, Koen L. ; Viergever, Max A.
Author_Institution
Imaging Center, Univ. Hospital Utrecht, Netherlands
fYear
1996
fDate
21-22 Jun 1996
Firstpage
263
Lastpage
272
Abstract
Different multiscale generators are qualitatively compared with respect to their performance within a multiscale linking model for image segmentation. The linking model used is the hyperstack that was inspired by linear scale space theory. The authors discuss which properties of this paradigm are essential to determine which multiscale representations are suited as input to the hyperstack. If selected, one of the main problems the authors tackle is the estimation of the local scale such that the various stacks of images can effectively be compared. For nonlinear multiscale representations, which cart be written as modified diffusion equations, an upper bound can be achieved by synchronizing the evolution parameter. The synchronization is empirically verified by counting the number of elliptic patches at corresponding scales. The authors compare the resulting stacks of images and the segmentation on a test image and a coronal MR brain image
Keywords
biomedical NMR; brain; image segmentation; medical image processing; modelling; coronal MR brain image; elliptic patches; image stacks; linear scale space theory; linking-based image segmentation model; medical diagnostic imaging; modified diffusion equations; multiscale representations; nonlinear multiscale representations; paradigm properties; test image; Brain; Computer vision; Couplings; Electronic mail; Hospitals; Image segmentation; Joining processes; Nonlinear equations; Testing; Upper bound;
fLanguage
English
Publisher
ieee
Conference_Titel
Mathematical Methods in Biomedical Image Analysis, 1996., Proceedings of the Workshop on
Conference_Location
San Francisco, CA
Print_ISBN
0-8186-7368-0
Type
conf
DOI
10.1109/MMBIA.1996.534078
Filename
534078
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