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Ontology-Driven Generalization of Cartographic Representations by Aggregation and Dimensional Collapse

机译:通过聚合和维数折叠的制图表达的本体驱动

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Automatic generalization of cartographic features has been recognized as a goal of Geographic Information Science (GIScience). Many successful algorithms have been introduced for generalization tasks such as point reduction and smoothing of linear features. Such algorithms operate well as a function of change in map scale or resolution. Other generalization tasks have proved considerably more difficult. Two of these operations, aggregation and dimensional collapse, are trivial to implement - replacing a set of points with an area feature or replacing an area feature with a single point - but have proven challenging to make operational. The decision to aggregate or collapse features is as much dependent on the context of the features as they are change in map scale. This dissertation proposes to show how ontologies can be used to inform automated generalization in these operations.
机译:制图要素的自动综合已被认为是地理信息科学(GIScience)的目标。已经针对泛化任务引入了许多成功的算法,例如点减少和线性特征平滑。这样的算法作为地图比例尺或分辨率变化的函数可以很好地运行。事实证明,其他一般化任务要困难得多。这些操作中的两个操作,聚合和尺寸折叠,很容易实现-用区域要素替换一组点或用单个点替换区域要素-但事实证明,进行操作具有挑战性。聚集或折叠要素的决定在很大程度上取决于要素的上下文,因为它们在地图比例尺上会发生变化。本文旨在说明如何在这些操作中使用本体来指导自动化概括。

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