DocumentCode :
1063016
Title :
Segmentation for MRA Image: An Improved Level-Set Approach
Author :
Hao, Jiasheng ; Shen, Yi ; Wang, Qiang
Author_Institution :
Harbin Inst. of Technol., Harbin
Volume :
56
Issue :
4
fYear :
2007
Firstpage :
1316
Lastpage :
1321
Abstract :
Unsupervised segmentation of volumetric data is still a challenging task. Recently, level-set methods have received a great deal of attention, which combine global smoothness with the flexibility of topology changes and offer significant advantages over conventional statistical classification. However, level-set methods suffer from heavy computational burden because of a lot of iterations. We present a fast level-set framework based on the watershed algorithm for the segmentation of complicated structures from a volumetric data set. The driving application is the segmentation of 3-D human cerebrovascular structures from magnetic resonance angiography, which is known to be a very challenging segmentation problem due to the complexity of vessel geometry and intensity patterns. Experimental results show that the proposed method gives fast and accurate excellent segmentation.
Keywords :
biomedical MRI; blood vessels; image segmentation; medical image processing; 3D human cerebrovascular structures; MRA image segmentation; complicated structure segmentation; global smoothness; intensity patterns; level set methods; magnetic resonance angiography; segmentation problem; topology change flexibility; unsupervised volumetric data segmentation; vessel geometry complexity; watershed algorithm; Angiography; Biomedical imaging; Computational complexity; Geometry; Humans; Image color analysis; Image segmentation; Level set; Magnetic resonance; Topology; Biomedical measurements; image segmentation; level set; magnetic resonance angiography (MRA); watershed algorithm;
fLanguage :
English
Journal_Title :
Instrumentation and Measurement, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9456
Type :
jour
DOI :
10.1109/TIM.2007.899839
Filename :
4277029
Link To Document :
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