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A Review and Evaluation of Uncertainty Classification and the Error-Band Geometry Model

机译:不确定度分类和误差带几何模型的回顾与评估

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摘要

Advances in computer technologies have improved the quality of maps, making map comparison and analysis easier, but uncertainty and error still exist in GIS when overlaying geographic data with multiple or unknown confidence levels. The goals of this research are to review current geospatial uncertainty literature, present the Error-Band Geometry Model (EBGM) for classifying the size and shape of spatial confidence intervals for vector GIS data, and to analyze the interpretability of the model by looking at how people use metadata to classify the uncertainty of geographic objects. The results from this research are positive and provide important insight into how people interpret maps and geographic data. They suggest that uncertainty is more easily interpreted for well defined point data and GPS data. When data is poorly defined, people are unable to determine an approach to model uncertainty and generate error-bands. There is potential for using the EBGM to aid in the development of a GIS tool that can help individuals parameterize and model spatial confidence intervals, but more research is needed to refine the process by which people use the decision tree. A series of guiding questions or an uncertainty wizard tool that helps one select an uncertainty modeling approach might improve the way people apply this model to real-world applications.
机译:计算机技术的进步提高了地图的质量,使地图的比较和分析更加容易,但是当以多个或未知的置信度覆盖地理数据时,GIS中仍然存在不确定性和错误。这项研究的目的是回顾当前的地理空间不确定性文献,提出用于对矢量GIS数据的空间置信区间的大小和形状进行分类的误差带几何模型(EBGM),以及通过查看模型如何分析模型的可解释性人们使用元数据对地理对象的不确定性进行分类。这项研究的结果是积极的,并为人们如何解释地图和地理数据提供了重要的见识。他们认为,对于定义明确的点数据和GPS数据,不确定性更容易解释。当数据定义不充分时,人们将无法确定一种方法来对不确定性进行建模并生成误差带。有可能使用EBGM来帮助开发GIS工具,该工具可以帮助个人对空间置信区间进行参数化和建模,但是还需要进行更多的研究来完善人们使用决策树的过程。一系列指导性问题或不确定性向导工具可以帮助人们选择不确定性建模方法,这可能会改善人们将该模型应用于实际应用的方式。

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