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Regional simulation and landslide risk prediction based on bivariate logistic regression (A case study: Pahne Kola watershed in north of Iran)

机译:基于二元逻辑回归的区域模拟和滑坡风险预测(案例研究:伊朗北部的Pahne Kola流域)

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摘要

This study aims to assess landslide susceptibility in Pahne Kola watershed located in the south of Sari, based on bivariate logistic regression. For this purpose, the distribution map of the area’s landslides was firstly prepared in ArcGIS software. Eight effective factors on landslide event including elevation, slope, slope aspect, rainfall, land use, distance from the road, soil and geology were considered as independent variables. PGA is same for all the area because the study area is small. The independent variables including eight effective factors were including 61 sliding points as dependent variable, and number 1 was devoted to the presence and zero was devoted to absence of landslide. After quantitative analysis, the related data was transferred to SPSS software and after interpreting the coefficients, just the distance from the road was recognized as a significant variable influencing the final equation and the other independent variables were omitted from the final equation because of the lack of statistical correlation. After transferring the final probability equation to ArcGIS software, the landslide hazard map was prepared. Statistical model accuracy was evaluated and approved by omnibus test, model summary table, classification graph and table. Statistical evaluation of the model showed that the overall accuracy of prepared map was 85.2%.
机译:这项研究的目的是基于双变量Logistic回归评估位于Sari南部的Pahne Kola流域的滑坡敏感性。为此,首先在ArcGIS软件中准备了该地区的滑坡分布图。涉及海拔,坡度,坡度,降雨,土地利用,距道路的距离,土壤和地质等八个对滑坡事件有效的因素被视为独立变量。由于研究区域较小,因此所有区域的PGA均相同。包括8个有效因素的自变量包括61个滑点作为因变量,数字1表示滑坡的存在,零表示滑坡的不存在。经过定量分析后,将相关数据传输到SPSS软件,并在解释了系数之后,仅将距道路的距离视为影响最终方程式的重要变量,而其他自变量则由于缺少坐标而被省略。统计相关。将最终概率方程式传输到ArcGIS软件后,便准备了滑坡灾害图。统计模型的准确性通过综合测试,模型摘要表,分类图和表格进行评估和认可。模型的统计评估表明,准备好的地图的总体准确性为85.2%。

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