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Published in: Soft Computing 19/2020

27-02-2020 | Methodologies and Application

State-of-the-art fuzzy active contour models for image segmentation

Authors: Ajoy Mondal, Kuntal Ghosh

Published in: Soft Computing | Issue 19/2020

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Abstract

Image segmentation is the initial step for every image analysis task. A large variety of segmentation algorithm has been proposed in the literature during several decades with some mixed success. Among them, the fuzzy energy-based active contour models get attention to the researchers during last decade which results in development of various methods. A good segmentation algorithm should perform well in a large number of images containing noise, blur, low contrast, region in-homogeneity, etc. However, the performances of the most of the existing fuzzy energy-based active contour models have been evaluated typically on the limited number of images. In this article, our aim is to review the existing fuzzy active contour models from the theoretical point of view and also evaluate them experimentally on a large set of images under the various conditions. The analysis under a large variety of images provides objective insight into the strengths and weaknesses of various fuzzy active contour models. Finally, we discuss several issues and future research direction on this particular topic.

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Metadata
Title
State-of-the-art fuzzy active contour models for image segmentation
Authors
Ajoy Mondal
Kuntal Ghosh
Publication date
27-02-2020
Publisher
Springer Berlin Heidelberg
Published in
Soft Computing / Issue 19/2020
Print ISSN: 1432-7643
Electronic ISSN: 1433-7479
DOI
https://doi.org/10.1007/s00500-020-04794-y

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