首页> 外文期刊>International Journal of Erosion Control Engineering >Landslide Hazard Zonation in Sri Lanka: An Assessment of Manual and GIS Based Automated Procedure in Preparation of Geology Weight Map
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Landslide Hazard Zonation in Sri Lanka: An Assessment of Manual and GIS Based Automated Procedure in Preparation of Geology Weight Map

机译:斯里兰卡的滑坡灾害分区带:评估地质权重图过程中基于手动和GIS的自动化程序的评估

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Many techniques have been proposed for landslide hazard zonation (LHZ). They can generally be divided into two groups : direct or semi direct hazard mapping in which the degree of hazard is determined by the mapping expert and indirect hazard mapping in which either statistical or deterministic models are used to predict landslide prone areas based on information obtained from the interrelation between terrain factors and the landslide distribution. With the introduction of GIS, in particular indirect methods gained enormously due to its capacity to handle and analyze data with high spatial variability.In the context of Sri Lanka, landslide hazard maps are prepared using a model developed under a research project conducted from mid-1989 to mid-1995. This model is based on the analysis of six major terrain factors with sub factors and factor classes collected from more than thousand landslides occurred in Badulla and Nuwaraeliya districts. For the zonation based on this model, field data is collected according to those factors and the corresponding weight maps are prepared manually. GIS is only used finally as an overlaying and reclassifying tool. In this workflow, very laborious effort is needed for the preparation of geology weight map, especially when complex terrain conditions and large amount of data are involved. One of the reasons is that, unlike all other factors where the basic mapping units are areas, the geology map consists of two major parts : lithological units as areas but structural attitudes as linear or point measurements.In 2009, an approach was discussed how GIS capabilities can be used efficiently to integrate the influence of structural attitudes such as strike or dip directions and dip angles for the preparation of geology weight maps which is an essential part of the LHZ model used in Sri Lanka. Even though the original procedure was based on manual weighting since then, the newly introduced automated procedure has been used by National Building Research Organization to accelerate the mapping procedure.Under this study, a statistical comparison and an assessment were done between the two procedures and necessary modifications to the latter, that is to the automated procedure is proposed to enhance the accuracy of the method.
机译:已经提出了许多用于滑坡灾害分区(LHZ)的技术。它们通常可分为两类:直接或半直接灾害图谱,其危害程度由制图专家确定;以及间接灾害图谱,其中统计或确定性模型用于基于从地形因素与滑坡分布之间的相互关系。随着GIS的引入,特别是间接的方法因其能够处理和分析具有高空间变异性的数据而获得了巨大的收益。在斯里兰卡的背景下,滑坡灾害图是使用从中期开始进行的研究项目开发的模型制作的。 1989年至1995年中。该模型基于对六个主要地形因子的分析,这些因子包括从Badulla和Nuwaraeliya地区发生的上千次滑坡中收集的子因子和因子类。对于基于此模型的分区,将根据这些因素收集现场数据,并手动准备相应的权重图。 GIS最终只能用作覆盖和重新分类工具。在此工作流程中,需要非常费力的工作来准备地质权重图,尤其是在涉及复杂的地形条件和大量数据的情况下。原因之一是,与所有其他以基本制图单位为区域的因素不同,地质图由两个主要部分组成:以岩性单位为区域,而结构姿态为线性或点测量。2009年,讨论了一种方法,即GIS可以有效地利用这些功能来综合构造姿态(如走向或倾角方向和倾角)的影响,以准备地质权重图,这是斯里兰卡使用的LHZ模型的重要组成部分。尽管此后最初的过程是基于手动加权的,但美国国家建筑研究组织使用了新引入的自动化过程来加快制图过程。在此研究中,对这两个过程进行了统计比较和评估,必要时为了改进方法的准确性,提出了对后者的修改,即对自动化程序的修改。

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