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Landslide susceptibility assessment based on an interpretable coupled FR-RF model:A case study of Longyan City,Fujian Province,Southeast China
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作者 Zong-yue Lu Gen-yuan Liu +5 位作者 Xi-dong Zhao Kang Sun Yan-si Chen Zhi-hong Song Kai Xue Ming-shan Yang 《China Geology》 2025年第2期281-294,共14页
To enhance the prediction accuracy of landslides in in Longyan City,China,this study developed a methodology for geologic hazard susceptibility assessment based on a coupled model composed of a Geographic Information ... To enhance the prediction accuracy of landslides in in Longyan City,China,this study developed a methodology for geologic hazard susceptibility assessment based on a coupled model composed of a Geographic Information System(GIS)with integrated spatial data,a frequency ratio(FR)model,and a random forest(RF)model(also referred to as the coupled FR-RF model).The coupled FR-RF model was constructed based on the analysis of nine influential factors,including distance from roads,normalized difference vegetation index(NDVI),and slope.The performance of the coupled FR-RF model was assessed using metrics such as Receiver Operating Characteristic(ROC)and Precision-Recall(PR)curves,yielding Area Under the Curve(AUC)values of 0.93 and 0.95,which indicate high predictive accuracy and reliability for geological hazard forecasting.Based on the model predictions,five susceptibility levels were determined in the study area,providing crucial spatial information for geologic hazard prevention and control.The contributions of various influential factors to landslide susceptibility were determined using SHapley Additive exPlanations(SHAP)analysis and the Gini index,enhancing the model interpretability and transparency.Additionally,this study discussed the limitations of the coupled FR-RF model and the prospects for its improvement using new technologies.This study provides an innovative method and theoretical support for geologic hazard prediction and management,holding promising prospects for application. 展开更多
关键词 Machine learning Landslide susceptibility assessment Geographic Information System(GIS) Coupled fr-rf model Random forest INTERPRETABILITY SHapley Additive exPlanations Geological disater prevention engineering Longyan
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基于RF-FR模型的滑坡易发性评价——以略阳县为例 被引量:18
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作者 马啸 王念秦 +2 位作者 李晓抗 严冬 李嘉琳 《西北地质》 CAS CSCD 北大核心 2022年第3期335-344,共10页
滑坡易发性评价是指导区域滑坡初步预警、预报的重要手段。为提高县域滑坡易发性评价的准确性,以随机森林模型(RF)、频率比模型(FR)为基础模型,结合2种模型的优越性,建立随机森林-频率比模型(RF-FR),进行滑坡易发性评价。以略阳县域为... 滑坡易发性评价是指导区域滑坡初步预警、预报的重要手段。为提高县域滑坡易发性评价的准确性,以随机森林模型(RF)、频率比模型(FR)为基础模型,结合2种模型的优越性,建立随机森林-频率比模型(RF-FR),进行滑坡易发性评价。以略阳县域为研究区,选取高程、坡向、坡度、地层、地表粗糙度、距断层的距离、曲率、距道路的距离、地形湿度指数、距河流的距离及降雨量等14项影响因子建立数据库,采用Spearman方法对各因子相关性进行分析,剔除地形起伏度等3项相关性较高的评价因子,并基于滑坡相对点密度(LRPD)进行评价因子分析。结果表明:①滑坡灾害点与线状因子的距离呈负相关,即距离越近,灾害点越多。②FR、RF、RF-FR模型预测率分别为84.3%、90.1%、95.0%,RF-FR模型较FR、RF模型预测精度分别提高了10.7%、4.9%。③RF-FR模型的滑坡灾害点在高、极高易发区的比例比FR、RF模型分别提高了15.89%、5.29%。 展开更多
关键词 滑坡易发性 频率比模型 随机森林模型 RF-FR模型 滑坡相对点密度
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