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Modeling Wildfire Spread with an Irregular Graph Network

delete2022-11-04
delete16
delete
OA
AI
王非 封面图
王非 (Fei Wang) *
G
Guofeng Su
李新 封面图
李新 (Xin Li)
G
Guanning Wang
王
王婷 (Ting Wang)
Q
Qingxiang Meng
DOI:10.3390/fire5060185delete
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摘要

摘要

En 中文
The wildfire prediction model is crucial for accurate rescue and rapid evacuation. Existing models mainly adopt regular grids or fire perimeters to describe the wildfire landscape. However, these models have difficulty in explicitly demonstrating the local spread details, especially in a complex landscape. In this paper, we propose a wildfire spread model with an irregular graph network (IGN). This model implemented an IGN generation algorithm to characterize the wildland landscape with a variable scale, adaptively encoding complex regions with dense nodes and simple regions with sparse nodes. Then, a deep learning-based spread model is designed to calculate the spread duration of each graph edge under variable environmental conditions. Comparative experiments between the IGN model and widely used fire simulation models were conducted on a real wildfire in Getty, California, USA. The results show that the IGN model can accurately and explicitly describe the spatiotemporal characteristics of the wildfire spread in a novel graph form while maintaining competitive simulation refinement and computational efficiency (Jaccard: 0.587, SM: 0.740, OA: 0.800).
Keyword:
wildfire spread
irregular graph network
variable scale
deep learning
emergency rescue

期刊

F
Fire Switzerland
IF:
2.7
论文数:
1.7K
被引数:
3.2K

机构

T
tsinghua university
学者数:
11.9W
论文数: 10.0W
被引数: 137
W
wuhan university
学者数:
8.1W
论文数: 5.8W
被引数: 70
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