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Applying Binary Structured Additive Regression (STAR) for predicting wildfire in Galicia, Spain

机译:应用二元结构添加剂回归(星)预测西班牙加利西亚的野火

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Studies on causes and dynamics of wildfires make an important contribution to environmental. In the north of Spain, Galicia is one of the areas in which wildfires are the main cause of forest destruction. The main aim of this work is to model geographical and environmental effects on the risk of wildfires in Galicia using flexible regression techniques based on Structured Additive Regression (STAR) models. This methodology represents a new contribution to the classical logistic Generalized Linear Models (GLM) and Generalized Additive Models (GAM), commonly used in this environmental context. Their advantage lies on the flexibility of including spatial and temporal covariates, jointly with the other continuous covariates information. Moreover, these models generate maps of both structured and the unstructured effects, and they plotted separately. Working at spatial scales with a voxel resolution level of 1Km x 1Km per day, with the possibility of mapping the predictions in a color range, the binary STAR model represents an important tool for planning and management for the prevention of wildfires. Also, this statistical tool can accelerate the progress of fire behavior models that can be very useful for developing plans of prevention and firefighting.
机译:野火的原因和动态研究对环境产生了重要贡献。在西班牙北部,加利西亚是野火是森林破坏的主要原因之一。这项工作的主要目的是利用基于结构性添加剂回归(星)模型的灵活回归技术来模拟Galicia野火风险的地理和环境影响。该方法代表了对典型物流广义线性模型(GLM)和广义添加剂模型(GAM)的新贡献,通常用于这种环境上下文。它们的优势在于包括空间和时间协变量的灵活性,与其他连续协变量信息共同。此外,这些模型产生了结构化和非结构化效果的地图,它们分别绘制。在空间尺度上工作,具有每天1km x 1km的体素分辨率水平,具有在颜色范围内映射预测的可能性,二进制星模型代表了预防野火的规划和管理的重要工具。此外,这种统计工具可以加速消防行为模型的进展,这对于开发预防和消防计划非常有用。

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