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Landslide Susceptibility Analysis Based on Data Field

机译:基于数据域的滑坡敏感性分析

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The Three Gorges are the areas in which the geological disasters are very serious. There often happen great landslide disasters, which brings tremendous threat to normal running of the Three Gorge Dam and the properties and lives of the residents in the reservoir. So landslide susceptibility analysis is an important task of prevention and cure of landslides in the Three Gorges. In this paper, landslide susceptibility analysis in the Three Gorges is studied based on spatial data mining. ETM+ image, 1: 50000 geological graph and 1:10000 relief map are adopted as the data origins to produce the factors closely related to landslide transmutation, including slope structure, engineering rock group, slope level, fluctuation influence of reservoir water and land exploration. A spatial data mining method is proposed which is suitable for landslide susceptibility analysis. Firstly data field method is adopted to synthetically analyze the spatial distribution of landslides and the key factors influencing landslide transmutation and extract the potential centers. Secondly cloud model method is adopted to describe the concept represented by each potential center, and the synthesized cloud method elevates the concepts to produce the high-level concepts. Finally clustering analysis is made according to the membership degree of each data point to each high-level concept, and realizes landslide susceptibility analysis in the Three Gorges. The experimental results have shown that the method proposed in this paper obtains a good prediction result, which is priori to the ones of the other 3 methods (IsoData, K-Means and Parallelepiped). So the method can well realize landslide susceptibility analysis in the Three Gorges.
机译:三峡是地质灾害十分严重的地区。经常发生巨大的滑坡灾害,这给三峡大坝的正常运行以及水库居民的财产和生命带来了巨大威胁。因此,滑坡敏感性分析是三峡滑坡防治的重要任务。本文基于空间数据挖掘研究了三峡滑坡敏感性分析。以ETM +图像,1:50000地质图和1:10000地形图为数据源,以产生与滑坡trans变密切相关的因素,包括边坡结构,工程岩群,边坡水平,水库水位波动影响和土地勘查。提出了一种适用于滑坡敏感性分析的空间数据挖掘方法。首先采用数据场法对滑坡的空间分布及影响滑坡变形的关键因素进行综合分析,提取出潜在的中心。其次,采用云模型方法来描述每个潜在中心所代表的概念,综合云方法将这些概念提升为高级概念。最后,根据每个数据点对每个高级概念的隶属度进行聚类分析,并在三峡地区实现滑坡敏感性分析。实验结果表明,本文提出的方法取得了较好的预测结果,其结果优于其他三种方法(IsoData,K-Means和Parallelepiped)。因此,该方法可以很好地实现三峡滑坡敏感性分析。

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