DocumentCode :
3179890
Title :
Automated segmentation of skin lesions: Modified Fuzzy C mean thresholding based level set method
Author :
Masood, A. ; Al Jumaily, Adel Ali ; Hoshyar, Azadeh Noori ; Masood, Omama
Author_Institution :
Univ. of Technol. Sydney, Broadway, NSW, Australia
fYear :
2013
fDate :
19-20 Dec. 2013
Firstpage :
201
Lastpage :
206
Abstract :
Accurate segmentation of skin lesion can play a vital role in early detection of skin cancer. Taking the complexity and varieties of skin lesion images into consideration, we propose a new algorithm that combines the advantages of clustering, thresholding and active contour methods currently being used independently for segmentation purposes. A modified Fuzzy C mean thresholding algorithm is applied to initialize level set automatically and also for estimating controlling parameters for level set evolution. The performance of level set segmentation is subject to appropriate initialization, so the proposed initialization method is compared to some other state of the art initialization methods present in literature. The work has been tested on a clinical database of 238 images. Parameters for performance evaluation are presented in detail. Increased true detection rate and reduced false positive and false negative errors confirm the effectiveness of the proposed method for skin cancer detection.
Keywords :
cancer; fuzzy set theory; image segmentation; medical image processing; pattern clustering; skin; active contour method; appropriate initialization; automated segmentation; clinical database; clustering method; controlling parameter; false negative error reduction; false positive error reduction; initialization method; level set segmentation; modified Fuzzy C mean thresholding based level set method; performance evaluation; skin cancer detection; skin cancer early detection; skin lesion image complexity; skin lesion image varieties; true detection rate; Biomedical imaging; Clustering algorithms; Image segmentation; Lesions; Level set; Malignant tumors; Skin;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multi Topic Conference (INMIC), 2013 16th International
Conference_Location :
Lahore
Type :
conf
DOI :
10.1109/INMIC.2013.6731350
Filename :
6731350
Link To Document :
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