Jurnal AKSI (Akuntansi dan Sistem Informasi)
Vol. 7 No. 1 (2022)

Classification Analysis Of Regional Characteristics Using Convolutional Neural Network On Satellite Image

Canggih Pamungkas (Politeknik Indonusa Surakarta)
Edy Susena (Politeknik Indonusa Surakarta)



Article Info

Publish Date
26 May 2022

Abstract

One of the developments of Machine Learning technology is Deep Learning which uses an algorithm based on mathematical concepts that work like the human brain. An example of the use of deep learning is for digital image processing. Image Processing is used to identify, classify objects quickly, precisely, and can process multiple data simultaneously. In this study, an analysis of the classification of regional characteristics will be carried out. Regional characteristics are divided into two aspects, namely water areas and land areas. The land area is divided into mountains, highlands, lowlands, and valleys. While the territorial waters include straits, bays, rivers, and lakes. Classification will be done using one of the algorithms from Deep learning used in image processing, namely Convolutional Neural Network (CNN). The CNN algorithm consists of 3 main layers, namely Convolutional Layer, Pooling Layer, and Fully Connected Layer. In this study using CNN architecture with a combination of 3 Convolutional Neural Networks and 2 Fully Connected Layers. At the stage of making a regional characteristic classification system using deep learning, there are several main process stages, namely data collection, system design, training, and testing. The processed dataset is a regional image dataset originating from the satellite.

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Journal Info

Abbrev

aksi

Publisher

Subject

Computer Science & IT Economics, Econometrics & Finance

Description

Jurnal AKSI (Akuntansi dan Sistem Informasi) with registered number ISSN 2541-3198 (printed), ISSN 2541-6145 (online) is scientific journals which publish articles from the fields of accounting and information system. AKSI will publish in two times issues Volume 1, Numbered: 1-2 are scheduled for ...