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Publication

Social Group Optimization Supported Segmentation and Evaluation of Skin Melanoma Images

Title
Social Group Optimization Supported Segmentation and Evaluation of Skin Melanoma Images
Type
Article in International Scientific Journal
Year
2018-02-22
Authors
Nilanjan Dey
(Author)
Other
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Venkatesan Rajinikanth
(Author)
Other
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Amira S. Ashour
(Author)
Other
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João Manuel R. S. Tavares
(Author)
FEUP
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Journal
Title: SymmetryImported from Authenticus Search for Journal Publications
Vol. 10
Pages: 51-51
ISSN: 2073-8994
Publisher: MDPI
Indexing
Publicação em ISI Web of Science ISI Web of Science
INSPEC
Scientific classification
CORDIS: Technological sciences
FOS: Medical and Health sciences
Other information
Authenticus ID: P-00N-P6K
Resumo (PT):
Abstract (EN): The segmentation of medical images by computational methods has been claimed by the medical community, which has promoted the development of several algorithms regarding different tissues, organs and imaging modalities. Nowadays, skin melanoma is one of the most common serious malignancies in the human community. Consequently, automated and robust approaches have become an emerging need for accurate and fast clinical detection and diagnosis of skin cancer. Digital dermatoscopy is a clinically accepted device to register and to investigate suspicious regions in the skin. During the skin melanoma examination, mining the suspicious regions from dermoscopy images is generally demanded in order to make a clear diagnosis about skin diseases, mainly based on features of the region under analysis like border symmetry and regularity. Predominantly, the successful estimation of the skin cancer depends on the used computational techniques of image segmentation and analysis. In the current work, a social group optimization (SGO) supported automated tool was developed to examine skin melanoma in dermoscopy images. The proposed tool has two main steps, mainly the image pre-processing step using the Otsu/Kapur based thresholding technique and the image post-processing step using the level set/active contour based segmentation technique. The experimental work was conducted using three well-known dermoscopy image datasets. Similarity metrics were used to evaluate the clinical significance of the proposed tool such as Jaccard's coefficient, Dice's coefficient, false positive/negative rate, accuracy, sensitivity and specificity. The experimental findings suggest that the proposed tool achieved superior performance relatively to the ground truth images provided by a skin cancer physician. Generally, the proposed SGO based Kapur's thresholding technique combined with the level set based segmentation technique is very effective for identifying melanoma dermoscopy digital images with high sensitivity, specificity and accuracy.
Language: English
Type (Professor's evaluation): Scientific
No. of pages: 21
Documents
File name Description Size
symmetry-10-00051 Paper 1611.62 KB
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