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A knowledge-based decision support system to analyze the debris-flow problems at Chen-Yu-Lan River, Taiwan

机译:基于知识的决策支持系统,用于分析台湾陈玉兰河的泥石流问题

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Decision-making for the debris-flow management involves multiple decision-makers often with concerning geomorphological and hydraulic conditions. Spatial decision support systems (SDSS) can be developed to improve our understanding of the relations among the natural and socio-economic variables to the occurrenceon-occurrence samples of debris-flow. Accordingly, the goal of this study is to development a debris-flow decision support system to manage and monitor the debris-flows in Nan-Tou County, Taiwan. The present study, more specifically, combines a spatial information system with an advanced Data Mining technique to investigate the debris-flow problem. In the first stage, our spatial information system integrates remote sensing, DEM, and aerial photos as three different resources to generate our spatial database. Each of the geomorphological and hydraulic attributes are obtained automatically through our spatial database. Then, a Data Mining classifier (hybrid model of decision tree (D.T.) + support vector machine (S.V.M.)) will be used to analyze and resolve the classification of occurrence of debris-flow. The contribution of this study has found that watershed area and NDVI (Normalized Difference Vegetation Index) are the crucial factors governing debris-flow by means of decision tree analysis. Further, the performance of prediction accuracy on testing samples through support vector machine is 73% which could be helpful for us to have better understanding of debris-flow problem.
机译:泥石流管理的决策涉及多个决策者,通常涉及地貌和水力条件。可以开发空间决策支持系统(SDSS),以增进我们对自然和社会经济变量与泥石流发生/不发生样本之间关系的理解。因此,本研究的目的是开发一个泥石流决策支持系统,以管理和监视台湾南投县的泥石流。更具体地说,本研究将空间信息系统与先进的数据挖掘技术相结合,以研究泥石流问题。在第一阶段,我们的空间信息系统将遥感,DEM和航拍照片作为三种不同的资源进行集成,以生成我们的空间数据库。每个地貌和水力属性都是通过我们的空间数据库自动获得的。然后,将使用数据挖掘分类器(决策树(D.T.)混合模型+支持向量机(S.V.M.))来分析和解决泥石流发生的分类。这项研究的成果发现,通过决策树分析,流域面积和NDVI(归一化植被指数)是控制泥石流的关键因素。此外,通过支持向量机对样本进行预测的准确度为73%,这可能有助于我们更好地理解泥石流问题。

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