DocumentCode
2719624
Title
Pice: Prior information constrained evolution for 3-D and 4-D brain tumor segmentation
Author
Xue, Xiaojun ; Xue, Zhong ; Cao, Fei ; Zhu, Ying ; Young, Geoffrey S. ; Li, Yan ; Yang, Jianhua ; Wong, Stephen T C
Author_Institution
Methodist Hosp., Weil Cornell Med. Coll., Houston, TX, USA
fYear
2010
fDate
14-17 April 2010
Firstpage
840
Lastpage
843
Abstract
Brain tumor segmentation is an important image processing step in diagnosis, treatment planning, and follow-up studies of Glioblastoma (GBM). However it is still a challenging task due to varying in size, shape, location, and image intensities within and around the tumor. In this paper, we propose a new brain tumor segmentation method for T1-weighted MR brain images based on an improved level set method using prior information as a constraint, called Prior Information Constrained Evolution (PICE). A new energy function in PICE incorporating the tumor intensity prior is designed to match brain tumor more accurately. The advantage of PICE has been illustrated by comparing with the traditional level set method in 3-D. In addition, we also illustrate that PICE can be easily applied to 4-D images, which facilitates follow-up studies of brain tumor treatments. Using longitudinal GBM data from five patients we showed the advantages of the proposed algorithm.
Keywords
biomedical MRI; brain; cancer; image segmentation; medical image processing; tumours; 3-D segmentation; 4-D segmentation; PICE; T1-weighted MRI; brain tumor; energy function; glioblastoma; image intensities; image processing; prior information constrained evolution; Biomedical imaging; Brain; Hospitals; Image segmentation; Level set; Magnetic resonance imaging; Medical diagnostic imaging; Neoplasms; Radiology; Shape; level set; magnetic resonance imaging; prior distribution; tumor segmentation;
fLanguage
English
Publisher
ieee
Conference_Titel
Biomedical Imaging: From Nano to Macro, 2010 IEEE International Symposium on
Conference_Location
Rotterdam
ISSN
1945-7928
Print_ISBN
978-1-4244-4125-9
Electronic_ISBN
1945-7928
Type
conf
DOI
10.1109/ISBI.2010.5490117
Filename
5490117
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