Klasifikasi Bahan Biodegradable dan Non-Biodegradable Menggunakan Convolutional Neural Network (CNN)

Muhammad Abdul Latief(1*), Muhammad Rasikh Azfa Riyyasy(2), Fadilla Zundina Ulya(3), Popy Laras Puspita(4), Gavrilla Claudia(5), Luthfi Rakan Nabila(6)

(1) 
(2) Institut Teknologi Telkom Purwokerto
(3) Institut Teknologi Telkom Purwokerto
(4) Institut Teknologi Telkom Purwokerto
(5) Institut Teknologi Telkom Purwokerto
(6) Institut Teknologi Telkom Purwokerto
(*) Corresponding Author

Abstract


Deep Learning is a new scientific field in the field of Machine Learning which has recently developed. Deep Learning has excellent capabilities in computer vision. One of its uses is in the case of classifying objects into biodegradable and non-biodegradable materials. By implementing the CNN method in this case, it is possible to classify biodegradable and non-biodegradable waste appropriately and efficiently. This study uses image data of biodegradable and non-biodegradable materials sourced from Kaggle. The stages in this study consist of six stages. The first stage is to retrieve the dataset. The second stage is the preprocessing stage by rescaling the image. The third stage is to create a CNN model. The fourth stage is model training to get higher accuracy. The fifth stage is model evaluation and the last is testing the model. From the classification test using the CNN method, an accuracy of 93% is obtained. So it can be concluded that the CNN method used in this paper is capable of performing a good classification.



Keywords


Deep Learning; CNN;

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DOI: http://dx.doi.org/10.30998/string.v8i3.19314

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Copyright (c) 2024 Muhammad Abdul Latief, Muhammad Rasikh Azfa Riyyasy, Fadilla Zundina Ulya, Popy Laras Puspita, Gavrilla Claudia, Luthfi Rakan Nabila, Kezia Intan Natalie

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