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Academic Journal of Computing & Information Science, 2022, 5(6); doi: 10.25236/AJCIS.2022.050603.

Research on Field Fire Prediction Based on Improved Grey Correlation Prediction Based on BP Neural Network

Author(s)

Wei Li, Yuchi Li, Xinshuo Du, Shumin Liu, Xin He

Corresponding Author:
​Wei Li
Affiliation(s)

College of Engineering, Qufu Normal University, Rizhao, Shandong, 276827, China

Abstract

In order to better prevent fire and adapt to the change of the probability of extreme fire events in the next ten years, we establish an improved grey neural network prediction model. According to the collected data of climate characteristics, precipitation, temperature, humidity, wind speed and air pressure in southeastern Australia, they are quantified and processed as learning samples, and the improved grey neural network is used to predict the scale of wildfires in southeastern Australia. Through sensitivity analysis, the robustness of the model is guaranteed.

Keywords

Wildfire monitoring, Gray neural network model, BP neural network

Cite This Paper

Wei Li, Yuchi Li, Xinshuo Du, Shumin Liu, Xin He.Research on Field Fire Prediction Based on Improved Grey Correlation Prediction Based on BP Neural Network. Academic Journal of Computing & Information Science (2022), Vol. 5, Issue 6: 14-18. https://doi.org/10.25236/AJCIS.2022.050603.

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