Literature DB >> 10378441

A fuzzy clustering based segmentation system as support to diagnosis in medical imaging.

F Masulli1, A Schenone.   

Abstract

In medical imaging uncertainty is widely present in data, because of the noise in acquisition and of the partial volume effects originating from the low resolution of sensors. In particular, borders between tissues are not exactly defined and memberships in the boundary regions are intrinsically fuzzy. Therefore, computer assisted unsupervised fuzzy clustering methods turn out to be particularly suitable for handling a decision making process concerning segmentation of multimodal medical images. By using the possibilistic c-means algorithm as a refinement of a neural network based clustering algorithm named capture effect neural network, we developed the possibilistic neuro fuzzy c-means algorithm (PNFCM). In this paper the PNFCM has been applied to two different multimodal data sets and the results have been compared to those obtained by using the classical fuzzy c-means algorithm. Furthermore, a discussion is presented about the role of fuzzy clustering as a support to diagnosis in medical imaging.

Mesh:

Year:  1999        PMID: 10378441     DOI: 10.1016/s0933-3657(98)00069-4

Source DB:  PubMed          Journal:  Artif Intell Med        ISSN: 0933-3657            Impact factor:   5.326


  5 in total

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4.  A wavelet relational fuzzy C-means algorithm for 2D gel image segmentation.

Authors:  Shaheera Rashwan; Mohamed Talaat Faheem; Amany Sarhan; Bayumy A B Youssef
Journal:  Comput Math Methods Med       Date:  2013-09-24       Impact factor: 2.238

5.  A Modified Brain MR Image Segmentation and Bias Field Estimation Model Based on Local and Global Information.

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  5 in total

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