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Forecasting wind-driven wildfires using an inverse modelling approach
2014
Natural Hazards and Earth System Sciences
<p><strong>Abstract.</strong> 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
doi:10.5194/nhess-14-1491-2014
fatcat:sd3bc5gn3vd4fkw33x4mhneira