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Predicting the occurrence of wildfires with binary structured additive regression models

机译:用二元结构化添加剂回归模型预测野火的发生

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摘要

Wildfires are one of the main environmental problems facing societies today, and in the case of Galicia (north-west Spain), they are the main cause of forest destruction. This paper used binary structured additive regression (STAR) for modelling the occurrence of wildfires in Galicia. Binary STAR models are a recent contribution to the classical logistic regression and binary generalized additive models. Their main advantage lies in their flexibility for modelling non-linear effects, while simultaneously incorporating spatial and temporal variables directly, thereby making it possible to reveal possible relationships among the variables considered. The results showed that the occurrence of wildfires depends on many covariates which display variable behaviour across space and time, and which largely determine the likelihood of ignition of a fire. The joint possibility of working on spatial scales with a resolution of 1 × 1 km cells and mapping predictions in a colour range makes STAR models a useful tool for plotting and predicting wildfire occurrence. Lastly, it will facilitate the development of fire behaviour models, which can be invaluable when it comes to drawing up fire-prevention and firefighting plans
机译:野火是当今社会面临的主要环境问题之一,而在加利西亚(西班牙西班牙西北部)的情况下,它们是森林毁灭的主要原因。本文使用了二元结构化添加剂回归(Star)来建模加利西亚野火的发生。二进制星模型是近期逻辑回归和二元广义添加剂模型的贡献。它们的主要优点在于它们的灵活性,用于建模非线性效应,同时同时连续地结合空间和时间变量,从而可以揭示所考虑的变量之间的可能关系。结果表明,野火的发生取决于许多协变量,这些协变量在空间和时间上显示可变行为,并且在很大程度上决定了火点火的可能性。在分辨率为1×1km电池的空间尺度上工作的关节可能性和颜色范围内的映射预测使得明星模型是一种用于绘制和预测野火发生的有用工具。最后,它将有助于开发火灾行为模型,这在吸引防火和消防计划时可以是非常宝贵的

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