Segmentation of Brain MRI Using SOM-FCM-Based Method and 3D Statistical Descriptors

Author:

Ortiz Andrés1,Palacio Antonio A.1,Górriz Juan M.2,Ramírez Javier2,Salas-González Diego2

Affiliation:

1. Communications Engineering Department, University of Malaga, 29004 Malaga, Spain

2. Department of Signal Theory, Communications and Networking, University of Granada, 18060 Granada, Spain

Abstract

Current medical imaging systems provide excellent spatial resolution, high tissue contrast, and up to 65535 intensity levels. Thus, image processing techniques which aim to exploit the information contained in the images are necessary for using these images in computer-aided diagnosis (CAD) systems. Image segmentation may be defined as the process of parcelling the image to delimit different neuroanatomical tissues present on the brain. In this paper we propose a segmentation technique using 3D statistical features extracted from the volume image. In addition, the presented method is based on unsupervised vector quantization and fuzzy clustering techniques and does not use any a priori information. The resulting fuzzy segmentation method addresses the problem of partial volume effect (PVE) and has been assessed using real brain images from the Internet Brain Image Repository (IBSR).

Funder

Ministerio de Ciencia e Innovacion

Publisher

Hindawi Limited

Subject

Applied Mathematics,General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,Modeling and Simulation,General Medicine

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