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Robust stacking-based ensemble learning model for forest fire detection

delete2023-09-19
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PRE
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K
Kemal Akyol *
DOI:10.1007/s13762-023-05194-zdelete
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Abstract

Abstract

En 中文
Forests reduce soil erosion and prevent drought, wind, and other natural disasters. Forest fires, which threaten millions of hectares of forest area yearly, destroy these precious resources. This study aims to design a deep learning model with high accuracy to intervene in forest fires at an early stage. A stacked-based ensemble learning model is proposed for fire detection from forest landscape images in this context. This model offers high test accuracies of 97.37%, 95.79%, and 95.79% with hold-out validation, fivefold cross-validation, and tenfold cross-validation experiments, respectively. The artificial intelligence model developed in this study could be used in real-time systems run on unmanned aerial vehicles to prevent potential disasters in forest areas.Graphical abstractBlock diagram of the proposed model
Keywords:
Forest fire
Computer vision
Deep learning
Stacking ensemble model
Bi-directional long short-term memory

Journal

International Journal of Environmental Science and Technology cover
International Journal of Environmental Science and Technology
IF:
3.4
Papers:
7.9K
Citations:
1.7W

Organization

K
Kastamonu University
Scholars:
1.0K
Papers: 927
Citations: 722
Cited Papers

Cited Papers

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errN. Hawkes
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Observer network and forest fire detection
err2011-07-01
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errSeric, Ljiljana; Stipanicev, Darko; Stula, Maja
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Towards an integrated forest fire danger assessment system for the European Alps
err2020-11-01
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errMuller, Mortimer M.; Vila-Vilardell, Lena; Vacik, Harald
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Examining the status of forest fire emission in 2020 and its connection to COVID-19 incidents in West Coast regions of the United States
err2022-07-01
err16
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errSannigrahi, Srikanta; Pilla, Francesco; Maiti, Arabinda; Bar, Somnath; Bhatt, Sandeep; Kaparwan, Ankit; Zhang, Qi; Keesstra, Saskia; Cerda, Artemi
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Time series forecasting for hourly photovoltaic power using conditional generative adversarial network and Bi-LSTM
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IF9.4
err2022-05-01
err96
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errHuang, Xiaoqiao; Li, Qiong; Tai, Yonghang; Chen, Zaiqing; Liu, Jun; Shi, Junsheng; Liu, Wuming
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The impact of straw mulching and salvage logging on post-fire runoff and soil erosion generation under Mediterranean climate conditions
err2019-03-01
err94
PREAI
errLucas-Borja, M. E.; Gonzalez-Romero, J.; Plaza-Alvarez, P. A.; Sagra, J.; Gomez, M. E.; Moya, D.; Cerda, A.; de las Heras, J.
errShare
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Forest fire detection: A fuzzy system approach based on overlap indices
err2017-03-01
err39
PREAI
errGarcia-Jimenez, Santiago; Jurio, Aranzazu; Pagola, Miguel; De Miguel, Laura; Barrenechea, Edurne; Bustince, Humberto
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