Microcalcification detection in mammograms using interval type-2 fuzzy logic system
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 develop a system that helps radiologists to detect microcalcification in mammogra...
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th-cmuir.6653943832-609782018-09-10T04:06:48Z Microcalcification detection in mammograms using interval type-2 fuzzy logic system Sutasinee Thovutikul Sansanee Auephanwiriyakul Nipon Theera-Umpon Computer Science Mathematics 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 develop a system that helps radiologists to detect microcalcification in mammograms. In particular, we apply the interval type-2 fuzzy logic system with four features, i.e., B-descriptor, D-descriptor, average intensity inside boundary, and intensity difference between inside and outside boundaries. We also compare the result with the result from a type-1 Mamdani fuzzy inference system with the same set of features. The result from the type-1 fuzzy logic system yields 87.95% correct classification with 11.33 false positives per image whereas interval type-2 fuzzy logic system provides 90.36% correct classification with only 4.73 false positives per image. © 2007 IEEE. 2018-09-10T04:02:22Z 2018-09-10T04:02:22Z 2007-12-01 Conference Proceeding 10987584 2-s2.0-50249164919 10.1109/FUZZY.2007.4295576 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=50249164919&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/60978 |
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Computer Science Mathematics Sutasinee Thovutikul Sansanee Auephanwiriyakul Nipon Theera-Umpon Microcalcification detection in mammograms using interval type-2 fuzzy logic system |
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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 develop a system that helps radiologists to detect microcalcification in mammograms. In particular, we apply the interval type-2 fuzzy logic system with four features, i.e., B-descriptor, D-descriptor, average intensity inside boundary, and intensity difference between inside and outside boundaries. We also compare the result with the result from a type-1 Mamdani fuzzy inference system with the same set of features. The result from the type-1 fuzzy logic system yields 87.95% correct classification with 11.33 false positives per image whereas interval type-2 fuzzy logic system provides 90.36% correct classification with only 4.73 false positives per image. © 2007 IEEE. |
format |
Conference Proceeding |
author |
Sutasinee Thovutikul Sansanee Auephanwiriyakul Nipon Theera-Umpon |
author_facet |
Sutasinee Thovutikul Sansanee Auephanwiriyakul Nipon Theera-Umpon |
author_sort |
Sutasinee Thovutikul |
title |
Microcalcification detection in mammograms using interval type-2 fuzzy logic system |
title_short |
Microcalcification detection in mammograms using interval type-2 fuzzy logic system |
title_full |
Microcalcification detection in mammograms using interval type-2 fuzzy logic system |
title_fullStr |
Microcalcification detection in mammograms using interval type-2 fuzzy logic system |
title_full_unstemmed |
Microcalcification detection in mammograms using interval type-2 fuzzy logic system |
title_sort |
microcalcification detection in mammograms using interval type-2 fuzzy logic system |
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2018 |
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https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=50249164919&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/60978 |
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