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OBJECT-BASED VERIFICATION AND UPDATE OF A LARGE-SCALE TOPOGRAPHIC DATABASE

机译:基于对象的验证和更新大规模地形数据库

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It is well known that there is a growing need for consistent and up-to-date GIS-data at various scales. This paper describes a system for semiautomatic quality assessment and update of an existing large scale topographic database. The necessary reference information is derived from current digital aerial orthophotos with a ground sampling distance of 0.1m via automatic image analysis. The advantage of the system is that it reduces the manual efforts of a human operator to a minimum. To overcome the limitations of the automatic components the human interaction is focused on those objects, for which no reliable assessment result can be achieved within the automatic verification process. The efficiency of the whole system depends on the performance of the used image analysis component, because the number of correct objects for which not enough evidence can be found in the imagery is the limiting efficiency factor. The focus of the paper is on the assessment of the most important object classes of a large scale topographic database maintained at the Ministry of Municipal and Rural Affairs (MOMRA), Kingdom of Saudi Arabia. Two different applications are implemented and evaluated. The first is the verification of the existing GIS-data and the second is the update of the GIS-data. Both applications were implemented using the software GeoAIDA that is a so-called knowledge-based system which was developed at the Institut fur Informationsverarbeitung (TNT), Leibniz Universitat Hannover, Germany. The automatic image analysis is based on a supervised texture classification. Manual evaluation results of the verification and the update approach of the MOMRA GIS-data in different test regions are shown and the results are discussed.
机译:众所周知,在各种尺度处始终如一的始终如一和最新的GIS数据需求。本文介绍了一个用于半自动质量评估和现有大规模地形数据库的更新系统。必要的参考信息来自当前数字空中的耳电极,通过自动图像分析的接地采样距离为0.1μm。系统的优点是它将人工操作者的手动努力降低到最低限度。为了克服自动组件的局限性,人类交互专注于这些对象,在其在自动验证过程中可以实现可靠的评估结果。整个系统的效率取决于所使用的图像分析组件的性能,因为在图像中可以找到没有足够证据证据的正确对象的数量是限制效率因子。本文的重点是评估大规模地形数据库的最重要的对象类,该数据库维护在沙特阿拉伯王国和农村事务部(MOMRA)。实现和评估了两个不同的应用程序。首先是验证现有的GIS数据,第二个是GIS数据的更新。这两个应用程序都是使用德国Institut毛皮信息(TNT),Leibniz Universitat Hannover,Leibniz Univertitat Hannover,Leibniz Universitat Hannover,Leibniz Universitat Hannover,Leibniz Univertitat Hannover,Leibniz Universitat Hannover,Leibniz Universitat Hannover,Leibniz Universitat Hannover,Leibniz Universitat Hannover,德国的软件。自动图像分析基于监督纹理分类。示出了验证的手动评估结果和MOMRA GIS数据的不同测试区中的更新方法,并讨论了结果。

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