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Change Detection for Building Footprints with Different Levels of Detail Using Combined Shape and Pattern Analysis

机译:结合形状和图案分析检测不同细节水平的建筑足迹的变化

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Crowd-sourced geographic information is becoming increasingly available, providing diverse and timely sources for updating existing spatial databases to facilitate urban studies, geoinformatics, and real estate practices. However, the discrepancies between heterogeneous datasets present challenges for automated change detection. In this paper, we identify important measurable factors to account for issues like boundary mismatch, large offset, and discrepancies in the levels of detail between the more current and to-be-updated datasets. These factors are organized into rule sets that include data matching, merge of the many-to-many correspondence, controlled displacement, shape similarity, morphology of difference parts, and the building pattern constraint. We tested our approach against OpenStreetMap and a Dutch topographic dataset (TOP10NL). By removing or adding some components, the results show that our approach (accuracy = 0.90) significantly outperformed a basic geometric method (0.77), commonly used in previous studies, implying a more reliable change detection in realistic update scenarios. We further found that distinguishing between small and large buildings was a useful heuristic in creating the rules.
机译:来自人群的地理信息变得越来越可用,为更新现有的空间数据库提供了各种及时的资源,以促进城市研究,地理信息学和房地产实践。但是,异构数据集之间的差异为自动更改检测提出了挑战。在本文中,我们确定了重要的可测量因素,以解决诸如边界不匹配,较大的偏移量以及较新的和将要更新的数据集之间的详细程度差异之类的问题。这些因素被组织成规则集,包括数据匹配,多对多对应关系的合并,受控位移,形状相似度,不同零件的形态以及建筑模式约束。我们针对OpenStreetMap和荷兰地形数据集(TOP10NL)测试了我们的方法。通过删除或添加一些组件,结果表明,我们的方法(精度= 0.90)大大优于以前研究中常用的基本几何方法(0.77),这意味着在实际更新场景中更可靠的更改检测。我们进一步发现,在建立规则时,区分大小建筑物是一种有用的启发式方法。

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