2020
DOI: 10.3390/electronics9030475
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An Efficient Hybrid Fuzzy-Clustering Driven 3D-Modeling of Magnetic Resonance Imagery for Enhanced Brain Tumor Diagnosis

Abstract: Brain tumor detection and its analysis are essential in medical diagnosis. The proposed work focuses on segmenting abnormality of axial brain MR DICOM slices, as this format holds the advantage of conserving extensive metadata. The axial slices presume the left and right part of the brain is symmetric by a Line of Symmetry (LOS). A semi-automated system is designed to mine normal and abnormal structures from each brain MR slice in a DICOM study. In this work, Fuzzy clustering (FC) is applied to the DICOM slice… Show more

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Cited by 13 publications
(17 citation statements)
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“…Kanniappan et al [126] segmented abnormal areas in brain MRI slides. They used fuzzy clustering to model a semi-automatic system for detecting normal and abnormal areas in each brain MRI slide.…”
Section: Hybrid Fuzzy Clustering Schemementioning
confidence: 99%
“…Kanniappan et al [126] segmented abnormal areas in brain MRI slides. They used fuzzy clustering to model a semi-automatic system for detecting normal and abnormal areas in each brain MRI slide.…”
Section: Hybrid Fuzzy Clustering Schemementioning
confidence: 99%
“…Fredo et al (2015) employed the reaction diffusion regularized level set (RDRLS) method to delineate CC [ 10 ]. Vachet et al (2012) implemented the deformable active Fourier contour model [ 15 ], and İçer (2013) discussed a two-step approach based on the Gaussian mixture model and FCM to extract the CC [ 16 ]. Li et al (2013) executed an automated two-step segmentation scheme by combining the mean shift clustering technique-based image improvement and geometric active contour (GAC) dependant segmentation of CC [ 26 ].…”
Section: Related Workmentioning
confidence: 99%
“…Due to its clinical significance, a substantial amount of CC assessment procedures has been proposed and discussed by researchers [ 15 , 16 ]. Normally, the CC region is best visible in the sagittal view of two-dimensional (2D) brain MRI.…”
Section: Introductionmentioning
confidence: 99%
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“…An efficient framework for enhancing and segmenting brain MRIs to identify a tumor is discussed in [21]. The hybridized fuzzy clustering and distance regularized level set (DRLS) technique effectively extracted the region of interest (ROI) in the brain slices.…”
Section: This Special Issuementioning
confidence: 99%