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Knowledge formalization for vector data matching using belief theory

机译:基于信念理论的矢量数据匹配的知识形式化

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摘要

Nowadays geographic vector data is produced both by public and private institutions using well defined specifications or crowdsourcing via Web 2.0 mapping portals. As a result, multiple representations of the same real world objects exist, without any links between these different representations. This becomes an issue when integration, updates, or multi-level analysis needs to be performed, as well as for data quality assessment. In this paper a multi-criteria data matching approach allowing the automatic definition of links between identical features is proposed. The originality of the approach is that the process is guided by an explicit representation and fusion of knowledge from various sources. Moreover the imperfection (imprecision, uncertainty, and incompleteness) is explicitly modeled in the process. Belief theory is used to represent and fuse knowledge from different sources, to model imperfection, and make a decision. Experiments are reported on real data coming from different producers, having different scales and either representing relief (isolated points) or road networks (linear data).
机译:如今,公共和私人机构都使用定义明确的规范或通过Web 2.0映射门户进行众包来生成地理矢量数据。结果,存在同一真实世界对象的多个表示,这些不同表示之间没有任何链接。当需要执行集成,更新或多级分析以及进行数据质量评估时,这将成为一个问题。在本文中,提出了一种多标准数据匹配方法,该方法允许自动定义相同特征之间的链接。该方法的独创性在于,该过程以明确表示和融合各种来源的知识为指导。此外,在此过程中还明确建模了缺陷(不精确性,不确定性和不完整性)。信念理论用于表示和融合来自不同来源的知识,以建模缺陷并做出决策。对来自不同生产者的真实数据进行了实验报告,这些数据具有不同的比例,并且代表地形(隔离点)或道路网络(线性数据)。

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