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Mapping regional forest fire probability using artificial neural network model in a Mediterranean forest ecosystem

机译:基于人工神经网络模型的地中海森林生态系统区域森林火灾概率图

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ABSTRACT Forest fires are one of the most important factors in environmental risk assessment and it is the main cause of forest destruction in the Mediterranean region. Forestlands have a number of known benefits such as decreasing soil erosion, containing wild life habitats, etc. Additionally, forests are also important player in carbon cycle and decreasing the climate change impacts. This paper discusses forest fire probability mapping of a Mediterranean forestland using a multiple data assessment technique. An artificial neural network (ANN) method was used to map forest fire probability in Upper Seyhan Basin (USB) in Turkey. Multi-layer perceptron (MLP) approach based on back propagation algorithm was applied in respect to physical, anthropogenic, climate and fire occurrence datasets. Result was validated using relative operating characteristic (ROC) analysis. Coefficient of accuracy of the MLP was 0.83. Landscape features input to the model were assessed statistically to identify the most descriptive factors on forest fire probability mapping using the Pearson correlation coefficient. Landscape features like elevation ( R = ?¢????0.43), tree cover ( R = 0.93) and temperature ( R = 0.42) were strongly correlated with forest fire probability in the USB region.
机译:摘要森林火灾是环境风险评估中最重要的因素之一,是地中海地区森林遭到破坏的主要原因。林地具有许多已知的好处,例如减少土壤侵蚀,减少野生动植物的栖息地等。此外,森林也是碳循环和减少气候变化影响的重要参与者。本文讨论了使用多数据评估技术绘制的地中海林地森林火灾概率图。人工神经网络(ANN)方法用于绘制土耳其上西汉盆地(USB)的森林火灾概率图。针对物理,人为,气候和火灾发生数据集,应用了基于反向传播算法的多层感知器(MLP)方法。使用相对工作特性(ROC)分析验证了结果。 MLP的准确性系数为0.83。使用Pearson相关系数对输入到模型中的景观特征进行统计评估,以识别森林火灾概率图上最具描述性的因素。诸如海拔(R = 0.43),树木(R = 0.93)和温度(R = 0.42)之类的景观特征与USB区域的森林火灾概率高度相关。

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