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华东地区冲积平原上的两起岩溶病害
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作者 盛仕声 《铁道工程学报》 EI 1989年第2期152-158,共7页
华东地区的冲积平原,地形平坦,基岩埋置较深,路基岩溶病害极为罕见。但近年来,由于人文活动的加剧,破坏了原有的自然平衡,致使本来没有病害的路基也出现了病害。两年来,我局与四院合作,接连治理了两起由岩溶引起的路基病害,效果良好,现... 华东地区的冲积平原,地形平坦,基岩埋置较深,路基岩溶病害极为罕见。但近年来,由于人文活动的加剧,破坏了原有的自然平衡,致使本来没有病害的路基也出现了病害。两年来,我局与四院合作,接连治理了两起由岩溶引起的路基病害,效果良好,现将病害情况、治理经过及个人认识分述于后,供参考。 展开更多
关键词 岩溶水 华东地区 基岩 压浆 自然平衡 抽水量 路基面 压入 下伏基岩 人文活动
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Machine learning strategies for lithostratigraphic classification based on geochemical sampling data: A case study in area of Chahanwusu River, Qinghai Province, China 被引量:7
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作者 ZHANG Bao-yi LI Man-yi +4 位作者 LI Wei-xia JIANG Zheng-wen Umair KHAN WANG Li-fang WANG Fan-yun 《Journal of Central South University》 SCIE EI CAS CSCD 2021年第5期1422-1447,共26页
Based on the complex correlation between the geochemical element distribution patterns at the surface and the types of bedrock and the powerful capabilities in capturing subtle of machine learning algorithms,four mach... Based on the complex correlation between the geochemical element distribution patterns at the surface and the types of bedrock and the powerful capabilities in capturing subtle of machine learning algorithms,four machine learning algorithms,namely,decision tree(DT),random forest(RF),XGBoost(XGB),and LightGBM(LGBM),were implemented for the lithostratigraphic classification and lithostratigraphic prediction of a quaternary coverage area based on stream sediment geochemical sampling data in the Chahanwusu River of Dulan County,Qinghai Province,China.The local Moran’s I to represent the features of spatial autocorrelations,and terrain factors to represent the features of surface geological processes,were calculated as additional features.The accuracy,precision,recall,and F1 scores were chosen as the evaluation indices and Voronoi diagrams were applied for visualization.The results indicate that XGB and LGBM models both performed well.They not only obtained relatively satisfactory classification performance but also predicted lithostratigraphic types of the Quaternary coverage area that are essentially consistent with their neighborhoods which have the known types.It is feasible to classify the lithostratigraphic types through the concentrations of geochemical elements in the sediments,and the XGB and LGBM algorithms are recommended for lithostratigraphic classification. 展开更多
关键词 machine learning geochemical sampling lithostratigraphic classification lithostratigraphic prediction BEDROCK
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