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Spatial Forecast of Landslides in Three Gorges Based On Spatial Data Mining

机译:基于空间数据挖掘的三峡滑坡空间预测

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摘要

The Three Gorges is a region with a very high landslide distribution density and a concentrated population. In Three Gorges there are often landslide disasters, and the potential risk of landslides is tremendous. In this paper, focusing on Three Gorges, which has a complicated landform, spatial forecasting of landslides is studied by establishing 20 forecast factors (spectra, texture, vegetation coverage, water level of reservoir, slope structure, engineering rock group, elevation, slope, aspect, etc). China-Brazil Earth Resources Satellite (Cbers) images were adopted based on C4.5 decision tree to mine spatial forecast landslide criteria in Guojiaba Town (Zhigui County) in Three Gorges and based on this knowledge, perform intelligent spatial landslide forecasts for Guojiaba Town. All landslides lie in the dangerous and unstable regions, so the forecast result is good. The method proposed in the paper is compared with seven other methods: IsoData, K-Means, Mahalanobis Distance, Maximum Likelihood, Minimum Distance, Parallelepiped and Information Content Model. The experimental results show that the method proposed in this paper has a high forecast precision, noticeably higher than that of the other seven methods.
机译:三峡是一个滑坡分布密度很高,人口集中的地区。在三峡地区,经常发生滑坡灾害,滑坡的潜在风险巨大。本文针对地形复杂的三峡,通过建立20种预测因子(频谱,质地,植被覆盖度,水库水位,边坡结构,工程岩群,标高,坡度,方面等)。采用基于C4.5决策树的中巴地球资源卫星(Cbers)图像,对三峡市郭家坝镇(hi归县)的空间预报滑坡判据进行了挖掘,并以此为基础对郭家坝镇进行了智能的空间滑坡预报。所有的滑坡都位于危险和不稳定的地区,因此预测结果是好的。将本文提出的方法与其他七个方法进行了比较:IsoData,K-Means,马氏距离,最大似然,最小距离,平行六面体和信息内容模型。实验结果表明,本文提出的方法具有较高的预测精度,明显高于其他七种方法。

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