Yunianti, Rizqi and Murinto, Murinto (2025) Classification Of the Maturity Level of Fermented Glutinous Rice Using Convolutional Neural Network Model. [Artikel Dosen]
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Classification-Of-The-Maturity-Level-Of-Glutinous-Rice-Tape-Fermentation-Using-Convolutional-Neural-Network.pdf - Published Version Download (727kB) |
Abstract
Fermented glutinous rice is a popular snack in Indonesia. One of the main benefits of eating white cheddar rice is to trigger the digestive system. Excessive consumption can result in a decrease in sweetness and inappropriate texture. Therefore, it is necessary to classify the maturity level of the tape, so that there is no excessive maturity that
results in adverse effects on the body and the quality of the tapes. The study aims to test the accuracy of the white tape maturity classification program as well as design and implement a classification system using the Convolutional Neural Network (CNN) method with the VGG16 architecture. The white tape image data set was obtained with the
iPhone X camera in jpg format, covering three maturity classes: raw, ripe, and rotten, each consisting of 400 images. The data set is divided into 768 training data, 192 validation data, and 240 test data, then processed through preprocessing stages including resize, augmentation,
and rescale. The CNN model was implemented with the VGG16
architecture and tested on various Epochs, producing an accuracy of 0.98 on Epochs 20 and 30, and reaching 0.99 on the 40th. The results of the research showed that the CNN method with VGG-16 architecture was effective in classifying the maturity level of the tape, achieving high accuration and significant consistency as the number of Epochs
increased. This implementation is expected to preserve the quality of the tapes and extend the application of modern technology in traditional industries
Item Type: | Artikel Dosen |
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Subjects: | T Technology > T Technology (General) |
Divisi / Prodi: | Faculty of Industrial Technology (Fakultas Teknologi Industri) > S1-Informatics Engineering (S1-Teknik Informatika) |
Depositing User: | murinto murinto |
Date Deposited: | 27 Aug 2025 04:37 |
Last Modified: | 27 Aug 2025 04:37 |
URI: | http://eprints.uad.ac.id/id/eprint/86702 |
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