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Brain segmentation using susceptibility weighted imaging method

Authors
Eun, S.-J.Whangbo, T.-K.
Issue Date
2014
Publisher
Institute of Electrical and Electronics Engineers Inc.
Keywords
Brain Segmentation; component; Susceptibility Weighted Imaging (SWI); Intersection seed point; MR theory; Region growing
Citation
2014 International Conference on IT Convergence and Security, ICITCS 2014
Journal Title
2014 International Conference on IT Convergence and Security, ICITCS 2014
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/13121
DOI
10.1109/ICITCS.2014.7021747
ISSN
0000-0000
Abstract
Object recognition is usually processed based on region segmentation algorithm. Region segmentation in the IT field is carried out by computerized processing of various input information such as brightness, shape, and pattern analysis. If the information mentioned does not make sense, however, many limitations could occur with region segmentation during computer processing. Therefore, this paper suggests effective region segmentation method based on Susceptibility Weighted Imaging (SWI) within the magnetic resonance (MR) theory. When we do pre-processing, proposed method was composed of SWI process. And then we do the Gray-white matter segmentation by improved region growing. In this study, the experiment had been conducted using images including the brain region and by getting up contrast enhancement image of SWI for segmentation to extract region (white matter) segmentation even when the border line was not clear. As a result, an average area difference of 8.8%, which was higher than the accuracy of conventional region segmentation algorithm, was obtained. © 2014 IEEE.
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Whangbo, Taeg Keun
College of IT Convergence (컴퓨터공학부(컴퓨터공학전공))
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