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Approaches to Semantic Similarity Measurement for Geo-Spatial Data: A Survey

机译:地理空间数据的语义相似性度量方法:一项调查

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摘要

Semantic similarity is central for the functioning of semantically enabled processing of geospatial data. It is used to measure the degree of potential semantic interoperability between data or different geographic information systems (GIS). Similarity is essential for dealing with vague data queries, vague concepts or natural language and is the basis for semantic information retrieval and integration. The choice of similarity measurement influences strongly the conceptual design and the functionality of a GIS. The goal of this article is to provide a survey presentation on theories of semantic similarity measurement and review how these approaches – originally developed as psychological models to explain human similarity judgment – can be used in geographic information science. According to their knowledge representation and notion of similarity we classify existing similarity measures in geometric, feature, network, alignment and transformational models. The article reviews each of these models and outlines its notion of similarity and metric properties. Afterwards, we evaluate the semantic similarity models with respect to the requirements for semantic similarity measurement between geospatial data. The article concludes by comparing the similarity measures and giving general advice how to choose an appropriate semantic similarity measure. Advantages and disadvantages point to their suitability for different tasks.
机译:语义相似性是语义支持的地理空间数据处理功能的关键。它用于测量数据或不同地理信息系统(GIS)之间潜在的语义互操作性的程度。相似性对于处理模糊的数据查询,模糊的概念或自然语言至关重要,并且是语义信息检索和集成的基础。相似性度量的选择极大地影响了GIS的概念设计和功能。本文的目的是提供有关语义相似性度量理论的调查报告,并回顾这些方法(最初是作为解释人类相似性判断的心理学模型而开发的)如何在地理信息科学中使用。根据他们的知识表示和相似性概念,我们将现有的相似性度量分类为几何,特征,网络,对齐和转换模型。本文回顾了每种模型,并概述了其相似性和度量属性的概念。然后,针对地理空间数据之间的语义相似性度量要求,评估语义相似性模型。本文通过比较相似性度量并给出有关如何选择合适的语义相似性度量的一般建议来得出结论。优点和缺点表明它们适用于不同的任务。

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