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Fuzzy Shannon Entropy: A Hybrid GIS-Based Landslide Susceptibility Mapping Method

机译:模糊香农熵:基于GIS的混合滑坡敏感性地图

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摘要

Assessing Landslide Susceptibility Mapping (LSM) contributes to reducing the risk of living with landslides. Handling the vagueness associated with LSM is a challenging task. Here we show the application of hybrid GIS-based LSM. The hybrid approach embraces fuzzy membership functions (FMFs) in combination with Shannon entropy, a well-known information theory-based method. Nine landslide-related criteria, along with an inventory of landslides containing 108 recent and historic landslide points, are used to prepare a susceptibility map. A random split into training (≈70%) and testing (≈30%) samples are used for training and validation of the LSM model. The study area—Izeh—is located in the Khuzestan province of Iran, a highly susceptible landslide zone. The performance of the hybrid method is evaluated using receiver operating characteristics (ROC) curves in combination with area under the curve (AUC). The performance of the proposed hybrid method with AUC of 0.934 is superior to multi-criteria evaluation approaches using a subjective scheme in this research in comparison with a previous study using the same dataset through extended fuzzy multi-criteria evaluation with AUC value of 0.894, and was built on the basis of decision makers’ evaluation in the same study area.
机译:评估滑坡敏感性地图(LSM)有助于减少滑坡的风险。处理与LSM相关的模糊性是一项艰巨的任务。在这里,我们展示了基于混合GIS的LSM的应用。混合方法将模糊隶属函数(FMF)与香农熵结合在一起,香农熵是一种众所周知的基于信息论的方法。九个与滑坡相关的标准,以及包含108个近期和历史滑坡点的滑坡清单,均用于编制磁化率图。随机分为训练样本(约70%)和测试样本(约30%)用于LSM模型的训练和验证。研究区域伊泽(Izeh)位于伊朗的胡兹斯坦省,这是一个高度脆弱的滑坡区。使用接收器工作特性(ROC)曲线结合曲线下面积(AUC)评估混合方法的性能。与先前使用相同数据集通过扩展模糊多准则评估(AUC值为0.894)进行相同数据集的研究相比,拟议的AUC为0.934的混合方法的性能优于本研究中使用主观方案的多准则评估方法。是基于同一研究区域中决策者的评估而建立的。

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