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Manifestation of remote sensing data and GIS on landslide hazard analysis using spatial-based statistical models

机译:基于空间统计模型的遥感数据和GIS在滑坡灾害分析中的表现

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This paper presents landslide hazard analysis at Cameron area, Malaysia, using a geographic information system (GIS) and remote sensing data. Landslide locations were identified from interpretation of aerial photographs and field surveys. Topographical and geological data and satellite images were collected, processed, and constructed into a spatial database using GIS and image processing. The factors chosen that influence landslide occurrence are topographic slope, topographic aspect, topographic curvature, and distance to rivers, all from the topographic database; lithology and distance to faults were taken from the geologic database; land cover from TM satellite image; the vegetation index value was taken from Landsat images; and precipitation distribution from meteorological data. Landslide hazard area was analyzed and mapped using the landslide occurrence factors by frequency ratio and bivariate logistic regression models. The results of the analysis were verified using the landslide location data and compared with the probabilistic models. The validation results showed that the frequency ratio model (accuracy is 89.25%) is better in prediction of landslide than bivariate logistic regression (accuracy is 85.73%) model.
机译:本文介绍了使用地理信息系统(GIS)和遥感数据在马来西亚金马伦地区进行的滑坡灾害分析。滑坡的位置是通过航空照片的解释和实地调查确定的。使用GIS和图像处理技术收集,处理地形和地质数据以及卫星图像,并将其构建为空间数据库。选择的影响滑坡发生的因素是地形坡度,地形纵横比,地形曲率和到河流的距离,所有这些都来自地形数据库。岩性和到断层的距离取自地质数据库。 TM卫星图像的土地覆盖;植被指数值取自Landsat影像;和气象数据的降水分布。通过频率比和二元logistic回归模型,利用滑坡发生因子对滑坡灾害区进行了分析和制图。使用滑坡位置数据验证了分析结果,并与概率模型进行了比较。验证结果表明,频率比模型(精度为89.25%)在滑坡预测中比双变量Logistic回归(精度为85.73%)模型更好。

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