Automated classification between age-related macular degeneration and Diabetic macular edema in OCT image using image segmentation
© 2014 IEEE. Age-related macular degeneration (AMD) and Diabetic macular edema (DME) are to lead causes to make a visual loss in people. People are suffered from the use of many time to diagnose and to wait for treatment both of diseases. This paper proposes a step of image segmentation to be divide...
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th-mahidol.359192018-11-23T17:06:54Z Automated classification between age-related macular degeneration and Diabetic macular edema in OCT image using image segmentation Jathurong Sugmk Supapom Kiattisin Adisom Leelasantitham Mahidol University Engineering © 2014 IEEE. Age-related macular degeneration (AMD) and Diabetic macular edema (DME) are to lead causes to make a visual loss in people. People are suffered from the use of many time to diagnose and to wait for treatment both of diseases. This paper proposes a step of image segmentation to be divided the optical coherence tomography (OCT) to find the retinal pigment epithelium (RPE) layer and to detect a shape of drusen in RPE layer. Then, the RPE layer is used for finding retinal nerve fiber layer (RNFL) and for detecting a bubble of blood area in RNFL complex. Finally, this method uses a binary classification to classify two diseases characteristic between AMD and DME. We use 16 OCT images of a case study to segmentation and classify two diseases. In the experimental results, 10 images of AMD and 6 images of DME can be detected and classified to accuracy of 87.5%. 2018-11-23T10:06:54Z 2018-11-23T10:06:54Z 2015-01-01 Conference Paper BMEiCON 2014 - 7th Biomedical Engineering International Conference. (2015) 10.1109/BMEiCON.2014.7017441 2-s2.0-84923052677 https://repository.li.mahidol.ac.th/handle/123456789/35919 Mahidol University SCOPUS https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84923052677&origin=inward |
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Engineering Jathurong Sugmk Supapom Kiattisin Adisom Leelasantitham Automated classification between age-related macular degeneration and Diabetic macular edema in OCT image using image segmentation |
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© 2014 IEEE. Age-related macular degeneration (AMD) and Diabetic macular edema (DME) are to lead causes to make a visual loss in people. People are suffered from the use of many time to diagnose and to wait for treatment both of diseases. This paper proposes a step of image segmentation to be divided the optical coherence tomography (OCT) to find the retinal pigment epithelium (RPE) layer and to detect a shape of drusen in RPE layer. Then, the RPE layer is used for finding retinal nerve fiber layer (RNFL) and for detecting a bubble of blood area in RNFL complex. Finally, this method uses a binary classification to classify two diseases characteristic between AMD and DME. We use 16 OCT images of a case study to segmentation and classify two diseases. In the experimental results, 10 images of AMD and 6 images of DME can be detected and classified to accuracy of 87.5%. |
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Mahidol University |
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Mahidol University Jathurong Sugmk Supapom Kiattisin Adisom Leelasantitham |
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Conference or Workshop Item |
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Jathurong Sugmk Supapom Kiattisin Adisom Leelasantitham |
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Jathurong Sugmk |
title |
Automated classification between age-related macular degeneration and Diabetic macular edema in OCT image using image segmentation |
title_short |
Automated classification between age-related macular degeneration and Diabetic macular edema in OCT image using image segmentation |
title_full |
Automated classification between age-related macular degeneration and Diabetic macular edema in OCT image using image segmentation |
title_fullStr |
Automated classification between age-related macular degeneration and Diabetic macular edema in OCT image using image segmentation |
title_full_unstemmed |
Automated classification between age-related macular degeneration and Diabetic macular edema in OCT image using image segmentation |
title_sort |
automated classification between age-related macular degeneration and diabetic macular edema in oct image using image segmentation |
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2018 |
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https://repository.li.mahidol.ac.th/handle/123456789/35919 |
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1763493518771224576 |