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Comparative study on machine learning algorithms for early fire forest detection system using geodata

Mohammed, ZouitenHanae, ChaaouanLarbi, Setti
International Journal of Electrical and Computer Engineering (IJECE) (Sinta 1)Vol. 0 No. 01 Oktober 2020
DOI10.11591/ijece.v10i5.pp5507-5513

Abstrak

Forest fires have caused considerable losses to ecologies, societies and economies worldwide. To minimize these losses and reduce forest fires, modeling and predicting the occurrence of forest fires are meaningful because they can support forest fire prevention and management. In recent years, the convolutional neural network (CNN) has become an important state-of-the-art deep learning algorithm, and its implementation has enriched many fields. Therefore, a competitive spatial prediction model for automatic early detection of wild forest fire using machine learning algorithms can be proposed. This model can help researchers to predict forest fires and identify risk zonas. System using machine learning algorithm on geodata will be able to notify in real time the interested parts and authorities by providing alerts and presenting on maps based on geographical treatments for more efficacity and analyzing of the situation. This research extends the application of machine learning algorithms for early fire forest prediction to detection and representation in geographical information system (GIS) maps.

Kata Kunci

Computer and InformaticsFire forest detectionMachine learningVoronoiSupport vector machineRandom forest

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Comparative study on machine learning algorithms for early fire forest detection system using geodata | International Journal of Electrical and Computer Engineering (IJECE) | Publiora