KLASIFIKASI PENYAKIT KRONIS MELALUI MATA MENGGUNAKAN ALGORITMA CONVOLUTIONAL NEURAL NETWORK DENGAN MODEL MOBILNET-V3

Waskito, Haydir Awaludin (2024) KLASIFIKASI PENYAKIT KRONIS MELALUI MATA MENGGUNAKAN ALGORITMA CONVOLUTIONAL NEURAL NETWORK DENGAN MODEL MOBILNET-V3. Undergraduate thesis, UPN Veteran Jawa Timur.

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Abstract

Chronic diseases in humans are very difficult to detect visually, for example glaucoma, hypertension, diabetes, and others. So it takes a lot of time for further medical examination by visiting a health center or hospital. Therefore, this research aims to find a solution combining medical and computer science to classify quickly and precisely. Classifying eye images requires good features and characteristics so that disease images can be classified. This research uses the Deep Learning method, namely Convolutional Neural Network with MobileNet-V3 architecture which can extract features from large resolution images very well. This research produces accurate image classification of chronic diseases Normal, Diabetes, Glucoma, Cataract, Age related macular degeneration, Hypertension, Pathalogical Myopia. using the MobileNet-V3 architecture, by utilizing MobileNet-V3 the accuracy results can reach a value of 81%.

Item Type: Thesis (Undergraduate)
Contributors:
ContributionContributorsNIDN/NIDKEmail
Thesis advisorSihananto, Andreas NugrohoNIDN6778385andreas.nugroho.jarkom@upnjatim.ac.id
Thesis advisorJunaidi, AchmadNIDN6687486UNSPECIFIED
Subjects: Q Science > Q Science (General)
Q Science > QA Mathematics
Q Science > QA Mathematics > QA75 Electronic computers. Computer science
Q Science > QA Mathematics > QA76.6 Computer Programming
Q Science > QA Mathematics > QA76.87 Neural computers
T Technology > T Technology (General)
Divisions: Faculty of Computer Science > Departemen of Informatics
Depositing User: Mohammad Haydir Awaludin Waskito
Date Deposited: 21 Jun 2024 03:42
Last Modified: 21 Jun 2024 03:42
URI: https://repository.upnjatim.ac.id/id/eprint/23821

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