Microcalcification detection in mammograms using interval type-2 fuzzy logic system with automatic membership function generation
Breast cancer is an important deleterious disease. Mortality rate from this cancer is effectively high and rapidly increasing. The detection at the earlier state can help to reduce the mortality rate. In this paper, we apply the interval type-2 fuzzy system with automatic membership function generat...
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th-cmuir.6653943832-14832014-08-29T09:29:21Z Microcalcification detection in mammograms using interval type-2 fuzzy logic system with automatic membership function generation Chumklin S. Auephanwiriyakul S. Theera-Umpon N. Breast cancer is an important deleterious disease. Mortality rate from this cancer is effectively high and rapidly increasing. The detection at the earlier state can help to reduce the mortality rate. In this paper, we apply the interval type-2 fuzzy system with automatic membership function generation using the Possibilistic C-Means (PCM) clustering algorithm. We utilize four features, i.e., B-descriptor, D-descriptor, average intensity of the inside boundary, and intensity difference between the inside and the outside boundaries. We also compare the result with the result from the interval type-2 fuzzy logic system with automatic membership function generation using the Fuzzy C-Means (FCM) clustering algorithm. The interval type-2 fuzzy system with PCM membership functions generation yields the best result, i.e., 89.47% correct classification with only 6 false positives per image. © 2010 IEEE. 2014-08-29T09:29:21Z 2014-08-29T09:29:21Z 2010 Conference Paper 9.78142E+12 10.1109/FUZZY.2010.5584896 82124 http://www.scopus.com/inward/record.url?eid=2-s2.0-78549276188&partnerID=40&md5=d85940332b570edf9d04cb213240c65c http://cmuir.cmu.ac.th/handle/6653943832/1483 English |
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Breast cancer is an important deleterious disease. Mortality rate from this cancer is effectively high and rapidly increasing. The detection at the earlier state can help to reduce the mortality rate. In this paper, we apply the interval type-2 fuzzy system with automatic membership function generation using the Possibilistic C-Means (PCM) clustering algorithm. We utilize four features, i.e., B-descriptor, D-descriptor, average intensity of the inside boundary, and intensity difference between the inside and the outside boundaries. We also compare the result with the result from the interval type-2 fuzzy logic system with automatic membership function generation using the Fuzzy C-Means (FCM) clustering algorithm. The interval type-2 fuzzy system with PCM membership functions generation yields the best result, i.e., 89.47% correct classification with only 6 false positives per image. © 2010 IEEE. |
format |
Conference or Workshop Item |
author |
Chumklin S. Auephanwiriyakul S. Theera-Umpon N. |
spellingShingle |
Chumklin S. Auephanwiriyakul S. Theera-Umpon N. Microcalcification detection in mammograms using interval type-2 fuzzy logic system with automatic membership function generation |
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Chumklin S. Auephanwiriyakul S. Theera-Umpon N. |
author_sort |
Chumklin S. |
title |
Microcalcification detection in mammograms using interval type-2 fuzzy logic system with automatic membership function generation |
title_short |
Microcalcification detection in mammograms using interval type-2 fuzzy logic system with automatic membership function generation |
title_full |
Microcalcification detection in mammograms using interval type-2 fuzzy logic system with automatic membership function generation |
title_fullStr |
Microcalcification detection in mammograms using interval type-2 fuzzy logic system with automatic membership function generation |
title_full_unstemmed |
Microcalcification detection in mammograms using interval type-2 fuzzy logic system with automatic membership function generation |
title_sort |
microcalcification detection in mammograms using interval type-2 fuzzy logic system with automatic membership function generation |
publishDate |
2014 |
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http://www.scopus.com/inward/record.url?eid=2-s2.0-78549276188&partnerID=40&md5=d85940332b570edf9d04cb213240c65c http://cmuir.cmu.ac.th/handle/6653943832/1483 |
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