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GIS-based evaluation of landslide susceptibility using a novel hybrid computational intelligence model on different mapping units 被引量:10
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作者 ZHANG Ting-yu mao zhong-an WANG Tao 《Journal of Mountain Science》 SCIE CSCD 2020年第12期2929-2941,共13页
Landslide susceptibility mapping is significant for landslide prevention.Many approaches have been used for landslide susceptibility prediction,however,their performances are unstable.This study constructed a hybrid m... Landslide susceptibility mapping is significant for landslide prevention.Many approaches have been used for landslide susceptibility prediction,however,their performances are unstable.This study constructed a hybrid model,namely box counting dimension-based kernel logistic regression model,which uses fractal dimension calculated by box counting method as input data based on grid cells mapping unit and terrain mapping unit.The performance of this model was evaluated in the application in Zhidan County,Shaanxi Province,China.Firstly,a total of 221 landslides were identified and mapped,and 11 landslide predisposing factors were considered.Secondly,the landslide susceptibility maps(LSMs) of the study area were obtained by constructing the model on two different mapping units.Finally,the results were evaluated with five statistical indexes,sensitivity,specificity,positive predictive value(PPV),negative predictive value(NPV) and Accuracy.The statistical indexes of the model obtained on the terrain mapping unit were larger than those based on grid cells mapping unit.For training and validation datasets,the area under the receiver operating characteristic curve(AUC) of the model based on terrain mapping unit were 0.9374 and 0.9527,respectively,indicating that establishing this model on the terrain mapping unit was advantageous in the study area.The results show that the fractal dimension improves the prediction ability of the kernel logistic model.In addition,the terrain mapping unit is a more promising mapping unit in Loess areas. 展开更多
关键词 Kernel logistic regression model Landslide susceptibility GIS Fractal dimension
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基于径向基神经网络耦合确定性指数的滑坡易发性分区研究 被引量:3
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作者 张庭瑜 毛忠安 孙增慧 《长江科学院院报》 CSCD 北大核心 2021年第11期64-72,共9页
滑坡易发性分区是预测滑坡的有效方法。利用径向基神经网络模型(RBFNN模型)耦合确定性指数(CF指数)构建混合模型(RBFNN-CF模型),开展陕西省汉中市城固县滑坡易发性分区研究。首先选取坡度、坡向、平面曲率、剖面曲率、高程、年平均降雨... 滑坡易发性分区是预测滑坡的有效方法。利用径向基神经网络模型(RBFNN模型)耦合确定性指数(CF指数)构建混合模型(RBFNN-CF模型),开展陕西省汉中市城固县滑坡易发性分区研究。首先选取坡度、坡向、平面曲率、剖面曲率、高程、年平均降雨量、道路缓冲区、水系缓冲区、断层缓冲区、NDVI和地层岩组作为滑坡诱发因子,计算对应的CF指数并量化诱发因子;其次将野外调查的184个滑坡数据按照7∶3的比例划分为训练数据和测试数据,分别利用RBFNN-CF和RBFNN模型绘制滑坡易发性分区图;最后利用受试者工作特征曲线(ROC曲线)下的面积评估和对比分区的结果及模型的分类能力。结果表明:RBFNN-CF模型的分类能力和泛化性均强于RBFNN模型,值得在研究区推广,得到的滑坡易发性分区图可为当地的滑坡防治工作提供参考。 展开更多
关键词 滑坡 易发性 RBFNN CF指数 混合模型 GIS ROC曲线
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湿陷性黄土的桩侧负摩阻力研究进展
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作者 毛忠安 陈恒大 《河南城建学院学报》 CAS 2018年第6期22-27,共6页
桩侧负摩阻力使湿陷性黄土在工程建设中存在巨大安全隐患。为更深入了解湿陷性黄土桩侧负摩阻力产生原因,基于弹性理论法和荷载传递函数法,分析了桩土荷载传递机理,总结了中性点位置的求解方法,梳理了快速求解桩侧最大负摩阻力的估算公... 桩侧负摩阻力使湿陷性黄土在工程建设中存在巨大安全隐患。为更深入了解湿陷性黄土桩侧负摩阻力产生原因,基于弹性理论法和荷载传递函数法,分析了桩土荷载传递机理,总结了中性点位置的求解方法,梳理了快速求解桩侧最大负摩阻力的估算公式,重点分析了考虑群桩效应的桩基负摩阻力计算模型,对比了Terzaghi-Peck法、远藤法和修正远藤法的优缺点,为今后湿陷性黄土场地群桩负摩阻力的研究提出建议。 展开更多
关键词 湿陷性黄土 受力特性 桩侧负摩阻力
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