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Positional error modeling for line simplification based on automatic shape similarity analysis in GIS

机译:基于自动形状相似度分析的GIS线简化位置误差建模

摘要

Automatic generalization is a process for representing geographical objects with different degrees of detail on a digital map. The positional error for each geographical object is propagated through the process and a generalization error is also introduced by the generalization. Previous research has focused mainly on measuring the generalization error. This paper presents an analytical model for assessing the positional error in the generalized object by considering both error propagation from the original data and the generalization error. The analytical model provides a shape dissimilarity value that indicates the shape difference between the original data with a positional error and its simplified version. This model is able to objectively and automatically determine the applicability of the generalized data for further applications to geographical information system (GIS) problems. It can also deal with a large amount of data in GIS. Therefore, the analytical model presented, which provides a more comprehensive shape measure for assessing positional error in data derived from the generalization, is valuable in the development of automatic generalization.
机译:自动概括是用于在数字地图上表示具有不同详细程度的地理对象的过程。每个地理对象的位置误差都会在此过程中传播,并且泛化也会引入泛化误差。先前的研究主要集中在测量泛化误差上。本文提出了一种分析模型,通过同时考虑原始数据的误差传播和广义误差来评估广义对象中的位置误差。分析模型提供一个形状不相似值,该值指示具有位置误差的原始数据与其简化版本之间的形状差异。该模型能够客观,自动地确定通用数据的适用性,以进一步应用于地理信息系统(GIS)问题。它还可以处理GIS中的大量数据。因此,所提出的分析模型可以提供更全面的形状度量,以评估从泛化获得的数据中的位置误差,对于自动泛化的开发非常有价值。

著录项

  • 作者

    Cheung CK; Shi W;

  • 作者单位
  • 年度 2006
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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