Monkeypox and measles detection using CNN with VGG-16 Transfer Learning / M Hafidz Ariansyah, Sri Winarno and Ramadhan Rakhmat Sani

The Monkeypox virus causes the infectious illness monkeypox. This virus is spread by coming into touch with infected animals or humans. Monkeypox is very similar to Measles. The rubeola virus causes measles, a contagious infectious disease. The cause is what distinguishes Monkeypox from Measles sick...

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Main Authors: Ariansyah, M Hafidz, Winarno, Sri, Sani, Ramadhan Rakhmat
Format: Article
Language:English
Published: UiTM Cawangan Perlis
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Online Access:https://ir.uitm.edu.my/id/eprint/70621/1/70621.pdf
https://doi.org/10.24191/jcrinn.v8i1.340
https://ir.uitm.edu.my/id/eprint/70621/
https://crinn.conferencehunter.com/index.php/jcrinn
https://doi.org/10.24191/jcrinn.v8i1.340
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Institution: Universiti Teknologi Mara
Language: English
id my.uitm.ir.70621
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spelling my.uitm.ir.706212023-04-11T02:58:17Z https://ir.uitm.edu.my/id/eprint/70621/ Monkeypox and measles detection using CNN with VGG-16 Transfer Learning / M Hafidz Ariansyah, Sri Winarno and Ramadhan Rakhmat Sani jcrinn Ariansyah, M Hafidz Winarno, Sri Sani, Ramadhan Rakhmat Neural networks (Computer science) Infectious and parasitic diseases The Monkeypox virus causes the infectious illness monkeypox. This virus is spread by coming into touch with infected animals or humans. Monkeypox is very similar to Measles. The rubeola virus causes measles, a contagious infectious disease. The cause is what distinguishes Monkeypox from Measles sickness. Although they are both carried through the air and generate similar symptoms, Monkeypox and Measles are two separate forms of infectious diseases. Vaccination is the most effective way to prevent Measles, while for Monkeypox, no vaccine can be used to prevent infection. In differentiating Monkeypox and Measles disease, the researcher proposes an image classification to distinguish symptoms between Monkeypox and Measles. Researchers used the deep learning method of image classification with Convolutional Neural Network architecture and VGG-16 transfer learning to do the modeling. Transfer learning is a technique that allows a model which has been trained on a dataset to be used on a different dataset. It allowed the model to adapt knowledge from the original data for use in new data. Researchers propose this method because learning using deep learning is very useful for similar images so that the model can accurately predict new data. The result is that the VGG-16 model can achieve high accuracy with a value of 83.333% at epoch value = 15 UiTM Cawangan Perlis Article PeerReviewed text en https://ir.uitm.edu.my/id/eprint/70621/1/70621.pdf Monkeypox and measles detection using CNN with VGG-16 Transfer Learning / M Hafidz Ariansyah, Sri Winarno and Ramadhan Rakhmat Sani. Journal of Computing Research and Innovation (JCRINN), 8 (1): 3. pp. 32-47. ISSN 2600-8793 https://crinn.conferencehunter.com/index.php/jcrinn https://doi.org/10.24191/jcrinn.v8i1.340 https://doi.org/10.24191/jcrinn.v8i1.340
institution Universiti Teknologi Mara
building Tun Abdul Razak Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Mara
content_source UiTM Institutional Repository
url_provider http://ir.uitm.edu.my/
language English
topic Neural networks (Computer science)
Infectious and parasitic diseases
spellingShingle Neural networks (Computer science)
Infectious and parasitic diseases
Ariansyah, M Hafidz
Winarno, Sri
Sani, Ramadhan Rakhmat
Monkeypox and measles detection using CNN with VGG-16 Transfer Learning / M Hafidz Ariansyah, Sri Winarno and Ramadhan Rakhmat Sani
description The Monkeypox virus causes the infectious illness monkeypox. This virus is spread by coming into touch with infected animals or humans. Monkeypox is very similar to Measles. The rubeola virus causes measles, a contagious infectious disease. The cause is what distinguishes Monkeypox from Measles sickness. Although they are both carried through the air and generate similar symptoms, Monkeypox and Measles are two separate forms of infectious diseases. Vaccination is the most effective way to prevent Measles, while for Monkeypox, no vaccine can be used to prevent infection. In differentiating Monkeypox and Measles disease, the researcher proposes an image classification to distinguish symptoms between Monkeypox and Measles. Researchers used the deep learning method of image classification with Convolutional Neural Network architecture and VGG-16 transfer learning to do the modeling. Transfer learning is a technique that allows a model which has been trained on a dataset to be used on a different dataset. It allowed the model to adapt knowledge from the original data for use in new data. Researchers propose this method because learning using deep learning is very useful for similar images so that the model can accurately predict new data. The result is that the VGG-16 model can achieve high accuracy with a value of 83.333% at epoch value = 15
format Article
author Ariansyah, M Hafidz
Winarno, Sri
Sani, Ramadhan Rakhmat
author_facet Ariansyah, M Hafidz
Winarno, Sri
Sani, Ramadhan Rakhmat
author_sort Ariansyah, M Hafidz
title Monkeypox and measles detection using CNN with VGG-16 Transfer Learning / M Hafidz Ariansyah, Sri Winarno and Ramadhan Rakhmat Sani
title_short Monkeypox and measles detection using CNN with VGG-16 Transfer Learning / M Hafidz Ariansyah, Sri Winarno and Ramadhan Rakhmat Sani
title_full Monkeypox and measles detection using CNN with VGG-16 Transfer Learning / M Hafidz Ariansyah, Sri Winarno and Ramadhan Rakhmat Sani
title_fullStr Monkeypox and measles detection using CNN with VGG-16 Transfer Learning / M Hafidz Ariansyah, Sri Winarno and Ramadhan Rakhmat Sani
title_full_unstemmed Monkeypox and measles detection using CNN with VGG-16 Transfer Learning / M Hafidz Ariansyah, Sri Winarno and Ramadhan Rakhmat Sani
title_sort monkeypox and measles detection using cnn with vgg-16 transfer learning / m hafidz ariansyah, sri winarno and ramadhan rakhmat sani
publisher UiTM Cawangan Perlis
url https://ir.uitm.edu.my/id/eprint/70621/1/70621.pdf
https://doi.org/10.24191/jcrinn.v8i1.340
https://ir.uitm.edu.my/id/eprint/70621/
https://crinn.conferencehunter.com/index.php/jcrinn
https://doi.org/10.24191/jcrinn.v8i1.340
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