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首页> 外文期刊>Journal of surveying engineering >Probabilistic Approach for Modeling and Presenting Error in Spatial Data
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Probabilistic Approach for Modeling and Presenting Error in Spatial Data

机译:空间数据中误差建模和表示的概率方法

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摘要

This paper presents a probabilistic approach to describe and visualize uncertainty and error in spatial data. The probabilistic approach assigns n-dimensional probability zones to n-dimensional measured feature locations. The size of each n-dimensional zone depends on the uncertainty arising from imprecise measurements or derived inaccuracy values, and a user-selected probability threshold that the "true" feature location is to be found within this probabilistic space. The uncertainties relate to recorded measurement precision, accuracy of a linear network, and issues of scale and resolution. The confidence intervals are based on the X~2 distribution, where the probability that the measured point location is within the tabulated distance of the true point location can be tested. The error model computes the probability of the intersection of two features or data sources to determine whether they are compatible and if they should be used together. The error model allows the user to assess the potential quality implications of combining data from different sources and with different qualities. The error model is encapsulated in a software program that includes a graphic user interface that facilitates visualization of results. The ability to visualize the quality of spatial data at different significance levels of confidence provides a powerful tool for communicating the impacts of the quality of spatial data on applications of interest to users.
机译:本文提出了一种概率方法来描述和可视化空间数据中的不确定性和误差。概率方法将n维概率区域分配给n维测量特征位置。每个n维区域的大小取决于测量结果不准确或得出的不准确度,以及用户选择的概率阈值,即在该概率空间内找到“真实”特征位置。不确定性与记录的测量精度,线性网络的精度以及规模和分辨率问题有关。置信区间基于X〜2分布,其中可以测试测得的点位置在真实点位置的列表距离内的概率。误差模型计算两个要素或数据源相交的概率,以确定它们是否兼容以及是否应一起使用。该错误模型允许用户评估将来自不同来源和不同质量的数据组合在一起的潜在质量影响。该错误模型被封装在一个软件程序中,该软件程序包括一个图形用户界面,该图形用户界面有助于结果的可视化。以不同的置信度水平可视化空间数据质量的能力提供了一个强大的工具,可以传达空间数据质量对用户感兴趣的应用程序的影响。

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