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Comparison of landslide susceptibility mapping methodologies for Koyulhisar, Turkey: conditional probability, logistic regression, artificial neural networks, and support vector machine

机译:土耳其Koyulhisar滑坡敏感性地图绘制方法的比较:条件概率,逻辑回归,人工神经网络和支持向量机

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摘要

This case study presented herein compares the GIS-based landslide susceptibility mapping methods such as conditional probability (CP), logistic regression (LR), artificial neural networks (ANNs) and support vector machine (SVM) applied in Koyulhisar (Sivas, Turkey). Digital elevation model was first constructed using GIS software. Landslide-related factors such as geology, faults, drainage system, topographical elevation, slope angle, slope aspect, topographic wetness index, stream power index, normalized difference vegetation index, distance from settlements and roads were used in the landslide susceptibility analyses. In the last stage of the analyses, landslide susceptibility maps were produced from ANN, CP, LR, SVM models, and they were then compared by means of their validations. However, area under curve values obtained from all four methodologies showed that the map obtained from ANN model looks like more accurate than the other models, accuracies of all models can be evaluated relatively similar. The results also showed that the CP is a simple method in landslide susceptibility mapping and highly compatible with GIS operating features. Susceptibility maps can be easily produced using CP, because input process, calculation and output processes are very simple in CP model when compared with the other methods considered in this study.
机译:本文介绍的此案例研究比较了在Koyulhisar(锡瓦斯,土耳其)中应用的基于GIS的滑坡敏感性地图绘制方法,例如条件概率(CP),逻辑回归(LR),人工神经网络(ANN)和支持向量机(SVM)。首先使用GIS软件构建了数字高程模型。在滑坡敏感性分析中,使用了与滑坡相关的因素,如地质,断层,排水系统,地形高程,坡度,坡度,地形湿度指数,河道动力指数,归一化植被指数,距居民点和道路的距离。在分析的最后阶段,根据ANN,CP,LR,SVM模型绘制了滑坡敏感性图,然后通过验证对它们进行了比较。但是,从所有四种方法获得的曲线值下面积显示,从ANN模型获得的地图看起来比其他模型更准确,可以评估所有模型的准确性相对相似。结果还表明,CP是滑坡敏感性图的一种简单方法,并且与GIS的操作特性高度兼容。使用CP可以轻松生成磁化率图,因为与本研究中考虑的其他方法相比,CP模型中的输入过程,计算和输出过程非常简单。

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