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A practical taxonomy of methods and literature for managing uncertain spatial data in geographic information systems

机译:地理信息系统中管理不确定空间数据的方法和文献的实用分类法

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摘要

Perfect information is seldom available to man or machines due to uncertainties inherent in real world problems. Uncertainties in geographic information systems (GIS) stem from either vague/ambiguous or imprecise/inaccurate/incomplete information and it is necessary for GIS to develop tools and techniques to manage these uncertainties. There is a widespread agreement in the GIS community that although GIS has the potential to support a wide range of spatial data analysis problems, this potential is often hindered by the lack of consistency and uniformity. Uncertainties come in many shapes and forms, and processing uncertain spatial data requires a practical taxonomy to aid decision makers in choosing the most suitable data modeling and analysis method. In this paper, we: (1) review important developments in handling uncertainties when working with spatial data and GIS applications; (2) propose a taxonomy of models for dealing with uncertainties in GIS; and (3) identify current challenges and future research directions in spatial data analysis and GIS for managing uncertainties.
机译:由于现实问题中固有的不确定性,很少有人或机器可以获得完美的信息。地理信息系统(GIS)的不确定性源自模糊不清/模棱两可的信息或不精确/不准确/不完整的信息,因此GIS必须开发工具和技术来管理这些不确定性。 GIS社区已达成广泛共识,尽管GIS有潜力支持广泛的空间数据分析问题,但由于缺乏一致性和统一性,这种潜力常常受到阻碍。不确定性有多种形式和形式,处理不确定的空间数据需要实用的分类法,以帮助决策者选择最合适的数据建模和分析方法。在本文中,我们:(1)回顾在处理空间数据和GIS应用程序时处理不确定性方面的重要发展; (2)提出用于处理GIS中不确定性的模型分类法; (3)确定空间数据分析和GIS中用于管理不确定性的当前挑战和未来研究方向。

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