DocumentCode :
1781818
Title :
Segmentation of abnormal cells by using level set model
Author :
Haj-Hassan, Hawraa ; Chaddad, Ahmad ; Tanougast, Camel ; Harkouss, Youssef
Author_Institution :
LCOMS-ASEC, Univ. of Lorraine, Metz, France
fYear :
2014
fDate :
3-5 Nov. 2014
Firstpage :
770
Lastpage :
773
Abstract :
Segmentation of image is used from a long time in medical image applications and its study is increased for enhanced the medical diagnosis. This paper concerns a deformable segmentation method for abnormal cells detection by using an improved Level set model which is solved several problems and disadvantages of others segmentation technique. Our approach employed by using real data of carcinoma cells obtained from optical microscopy. Preliminary simulation results showed high performance metrics of the proposed model. Comparative study with manual segmentation demonstrated and confirmed that the level set can be a promise model of abnormal cells detection and in a particularly an irregular shape like carcinoma cells type.
Keywords :
cancer; image segmentation; medical image processing; abnormal cell detection; abnormal cell segmentation; carcinoma cancer cells; deformable segmentation method; image segmentation; level set model; medical diagnosis; medical image applications; optical microscopy; Biomedical imaging; Image segmentation; Level set; Manuals; Mathematical model; Measurement; Shape; carcinoma; level-set; microscopy; segmentation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control, Decision and Information Technologies (CoDIT), 2014 International Conference on
Conference_Location :
Metz
Type :
conf
DOI :
10.1109/CoDIT.2014.6996994
Filename :
6996994
Link To Document :
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