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Forecasting wind-driven wildfires using an inverse modelling approach

机译:使用逆建模方法预测风力驱动的野火

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A technology able to rapidly forecast wildfire dynamics would lead to a paradigm shift in the response to emergencies, providing the Fire Service with essential information about the ongoing fire. This paper presents and explores a novel methodology to forecast wildfire dynamics in wind-driven conditions, using real-time data assimilation and inverse modelling. The forecasting algorithm combines Rothermel's rate of spread theory with a perimeter expansion model based on Huygens principle and solves the optimisation problem with a tangent linear approach and forward automatic differentiation. Its potential is investigated using synthetic data and evaluated in different wildfire scenarios. The results show the capacity of the method to quickly predict the location of the fire front with a positive lead time (ahead of the event) in the order of 10 min for a spatial scale of 100 m. The greatest strengths of our method are lightness, speed and flexibility. We specifically tailor the forecast to be efficient and computationally cheap so it can be used in mobile systems for field deployment and operativeness. Thus, we put emphasis on producing a positive lead time and the means to maximise it.
机译:能够快速预测野火动态的技术将导致对紧急情况的响应发生范式转变,从而为消防局提供有关正在进行的大火的基本信息。本文提出并探索了一种使用实时数据同化和逆模型预测风驱动条件下野火动态的新颖方法。该预测算法将Rothermel的扩散速率理论与基于惠更斯原理的周长扩展模型相结合,并通过切线线性方法和正向自动微分解决了优化问题。使用合成数据研究其潜力,并在不同的野火场景中对其进行评估。结果表明,该方法具有以正提前期(事件提前)快速预测火锋位置的能力,对于100 m的空间比例,其提前时间为10分钟。我们方法的最大优势是轻巧,速度快和灵活。我们特别将预测调整为高效且计算便宜,因此可以在移动系统中用于现场部署和可操作性。因此,我们将重点放在产生积极的提前期和使之最大化的方法上。

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