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INTEGRATING GEO-SPATIAL DATA FOR REGIONAL LANDSLIDE SUSCEPTIBILITY MODELING IN CONSIDERATION OF RUN-OUT SIGNATURE

机译:考虑到射出签名,整合地质空间数据进行区域滑坡敏感性建模

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This study implements a data mining-based algorithm, the random forests classifier, with geo-spatial data to construct a regional and rainfall-induced landslide susceptibility model. The developed model also takes account of landslide regions (source, non-occurrence and run-out signatures) from the original landslide inventory in order to increase the reliability of the susceptibility modelling. A total of ten causative factors were collected and used in this study, including aspect, curvature, elevation, slope, faults, geology, NDVI (Normalized Difference Vegetation Index), rivers, roads and soil data. Consequently, this study transforms the landslide inventory and vector-based causative factors into the pixel-based format in order to overlay with other raster data for constructing the random forests based model. This study also uses original and edited topographic data in the analysis to understand their impacts to the susceptibility modeling. Experimental results demonstrate that after identifying the run-out signatures, the overall accuracy and Kappa coefficient have been reached to be become more than 85 % and 0.8, respectively. In addition, correcting unreasonable topographic feature of the digital terrain model also produces more reliable modelling results.
机译:本研究实现了一种基于数据挖掘的算法,随机林分类器,具有地理空间数据,构建区域和降雨引起的滑坡敏感模型。开发的模型还考虑了来自原始滑坡库存的滑坡区域(源,不发生和跑出签名),以提高易感性建模的可靠性。在本研究中收集并使用10个致原因,包括方面,曲率,仰卧,坡度,故障,地质,NDVI(归一化差异植被指数),河流,道路和土壤数据。因此,该研究将基于滑坡库存和向量的致原因转换为基于像素的格式,以便覆盖与其他基于随机林的模型构建随机林的栅格数据。本研究还在分析中使用原始和编辑的地形数据来了解他们对易感性建模的影响。实验结果表明,在识别出射出签名后,已经达到了总体精度和κ系数分别变为85%和0.8。此外,纠正数字地形模型的不合理地形特征也会产生更可靠的建模结果。

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