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Validating the use of object-based image analysis to map commonly recognized landform features in the United States

机译:验证基于对象的图像分析来映射美国常识的地形功能

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摘要

The U.S. Geological Survey (USGS) National Geospatial Program (NGP) seeks to i) create semantically accessible terrain features from the pixel-based 3D Elevation Program (3DEP) data, and ii) enhance the usability of the USGS Geographic Names Information System (GNIS) by associating boundaries with GNIS features whose spatial representation is currently limited to 2D point locations. Geographic object-based image analysis (GEOBIA) was determined to be a promising method to approach both goals. An existing GEOBIA workflow was modified and the resulting segmented objects and terrain categories tested for a strategically chosen physiographic province in the mid-western US, the Ozark Plateaus. The chi-squared test of independence confirmed that there is significant overall spatial association between terrain categories of the GEOBIA and GNIS feature classes. Contingency table analysis also suggests strong category-specific associations between select GNIS and GEOBIA classes. However, 3D visual analysis revealed that GEOBIA objects resembled segmented regions more than they did individual landform objects, with their boundaries often failing to correspond to match what people would likely perceive as landforms. Still, objects derived through GEOBIA can provide initial baseline landscape divisions that can improve the efficiency of more specialized feature extraction methods.
机译:美国地质调查(USGS)国家地理空间计划(NGP)寻求i)从基于像素的3D高程程序(3DEP)数据和II)创建从基于像素的3D高度升高程序(3D)的地形功能,并增强USGS地理名称信息系统的可用性(GNIS )通过将边界与其空间表示目前限制在2D点位置的基地特征。基于地理对象的图像分析(Geobia)被确定为接近两个目标的有希望的方法。在美国中西部地区ozark Plateaus进行了修改了现有的桥面工作流程,并在美国中西部战略性选择的地貌省测试了由此产生的分段对象和地形类别。 Chi-Squared独立性测试证实,Geobia和GNIS特征类的地形类别之间存在显着的总空间关联。应急表分析还建议选择GNI和桥族类之间的强大类别关联。然而,3D视觉分析揭示了乔伊亚物体比单个地形物品更像分段地区,他们的边界经常失败,往往对应于匹配人们可能会被视为地貌的东西。尽管如此,通过桥鸟类导出的对象可以提供初始基线景观部门,可以提高更专业的特征提取方法的效率。

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