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A HYBRID METHOD FOR DERIVING DTMS FROM URBAN DEMS

机译:一种从城市DEMS获得DTM的混合方法

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摘要

This study focuses on the automatic extraction of DTMs from urban DEMs produced by image correlation. Many methods have been proposed in the literature yet processing correlation DEMs in any kind of areas remains a challenge. This paper presents a hybrid approach that combines complementary aspects of both TIN-based and segmentation-based techniques. Unlike previous work involving two complementary modules, the two techniques closely interact during the process. The DEM is first segmented and classified into ground and aboveground regions using contextual information. A DTM is then derived from the ground regions using a TIN-based technique. The classification and the DTM estimation are finally iteratively performed until stability. The hybrid approach for DTM extraction has been tested over several representative data sets and compared with the TIN-based and region-based approaches applied independently. It clearly shows that coupling complementary approaches improves the quality of the resulting DTM, as well in dense urban areas as in rural or hilly areas.
机译:本研究侧重于图像相关性产生的城市DEM自动提取DTM。在文献中提出了许多方法,但是任何类型的区域的处理相关性DEM仍然是一个挑战。本文介绍了一种混合方法,该方法结合了基于锡和分段的技术的互补方面。与以前的工作不同,涉及两个互补模块,这两种技术在过程中密切互动。首先使用上下文信息将DEM分段并分类为地面和地下区域。然后使用基于TIN的技术从地面区域衍生DTM。最终迭代地执行分类和DTM估计直到稳定性。通过几种代表性数据集测试了DTM提取的混合方法,并与独立应用的基于基于锡和基于区域的方法进行了测试。它清楚地表明,耦合互补方法提高了所得DTM的质量,以及农村或丘陵地区的密集城市地区。

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