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首页> 外文期刊>Computers & geosciences >Landslide identification and classification by object-based image analysis and fuzzy logic: An example from the Azdavay region (Kastamonu, Turkey)
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Landslide identification and classification by object-based image analysis and fuzzy logic: An example from the Azdavay region (Kastamonu, Turkey)

机译:通过基于对象的图像分析和模糊逻辑对滑坡进行识别和分类:来自Azdavay地区(土耳其,Kastamonu)的示例

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摘要

This study presents a data-driven and semiautomatic classification system carried out by object-based image analysis and fuzzy logic in a selected landslide-prone area in the Western Black Sea region of Turkey. In the first stage, a multiresolution segmentation process was performed using Landsat ETM+ satellite images of the study area. The model was established on 5235 image objects obtained by the segmentation process. A total of 70 landslide locations and 10 input parameters including normalized difference vegetation index, slope angle, curvature, brightness, mean band blue, asymmetry, shape index, length/width ratio, gray level co-occurrence matrix, and mean difference to infrared band were considered in the analyses. Membership functions were used to classify the study area by five fuzzy operators such as "and", "or", "mean arithmetic", "mean geometric", and "algebraic product". In order to assess the performances of the so-produced maps, 700 image objects, which were not used in the model, were taken into consideration. Based on the results, the map produced by "fuzzy and" operator performed better than those classified by the other fuzzy operators. The proposed methodology applied in this study may be useful for decision makers, local administrations, and scientists interested in landslides. It may also be useful in landslide-prone areas for planning, management, and regional development purposes.
机译:这项研究提出了一种数据驱动的半自动分类系统,该系统通过基于对象的图像分析和模糊逻辑在土耳其西部黑海地区易发滑坡的选定区域中进行了研究。在第一阶段,使用研究区域的Landsat ETM +卫星图像执行了多分辨率分割过程。在通过分割过程获得的5235个图像对象上建立模型。总共70个滑坡位置和10个输入参数,包括归一化植被指数,坡度角,曲率,亮度,平均带蓝,不对称性,形状指数,长宽比,灰度共生矩阵以及与红外带的平均差在分析中被考虑了。使用隶属度函数通过“和”,“或”,“平均算术”,“平均几何”和“代数乘积”等五个模糊运算符对研究区域进行分类。为了评估这样生成的地图的性能,考虑了模型中未使用的700个图像对象。根据结果​​,“ fuzzy and”运算符生成的地图的性能优于其他模糊运算符分类的地图。在这项研究中应用的拟议方法可能对决策者,地方政府和对滑坡感兴趣的科学家有用。在易于滑坡的地区,出于规划,管理和区域发展的目的,它也可能有用。

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