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Assessment of factors driving high fire severity potential and classification in a Mediterranean pine ecosystem

机译:对地中海松生态系统中引发严重火灾严重性的因素进行评估并进行分类

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摘要

Fire severity is an increasingly critical issue for forest managers for estimating fire impacts. Estimating high fire severity potential and accurate classification between fire severity levels are essential for integrated fire management planning in fire prone Mediterranean pine ecosystems. This study attempts to determine the role of topography, pre-fire forest stand structure, fuel complex characteristics and fire behavior parameters on high fire severity potential and classification based on a large fire event occurred in Thasos, Greece. Within this framework, the Random Forest (RF) classification algorithm was used to model the relationship between a large set of predictors and fire severity as expressed by the differenced Normalized Burn Ratio (dNBR) spectral index, inferred from differenced pre- and post-fire Landsat 8 Operational Land Imager (OLI) at 30-m resolution. Results from the RF classifier algorithm showed that high fire severity potential and classification between fire severity levels mainly depended on topography variables and fuel complex characteristics. Assessing of factors which drive a fire to turn into high severe fire and classification into fire severity levels will substantially help land and forest managers to increase fire prevention and develop of concrete actions for successful post fire management at landscape level.
机译:对于森林管理者来说,火灾严重性是评估火灾影响的日益重要的问题。估算高火灾严重性潜力并在火灾严重性级别之间进行准确分类对于易于发生火灾的地中海松树生态系统中的综合火灾管理规划至关重要。这项研究试图根据希腊萨索斯岛发生的一场大火事件,确定地形,森林火灾前林分结构,燃料复合物特征和火行为参数对高火势的潜在作用和分类。在此框架内,使用随机森林(RF)分类算法对大型预测变量与火灾严重性之间的关系进行建模,该关系由差异化的归一化燃烧比(dNBR)光谱指数表示,该差异是根据火灾前后的差异得出的Landsat 8可操作陆地成像仪(OLI),分辨率为30米。 RF分类器算法的结果表明,高火灾严重性潜力和火灾严重性级别之间的分类主要取决于地形变量和燃料复杂性特征。评估导致火灾转为严重大火的因素并将火灾严重性分类为火灾的严重程度,将极大地帮助土地和森林管理者提高防火能力,并为在景观层面成功地进行后期火灾管理制定具体措施。

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