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An evaluation of ontology matching techniques on geospatial ontologies

机译:对地理空间本体的本体匹配技术的评估

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Standardization is one of the pillars of interoperability. In this context, efforts promoted by the Open Geospatial Consortium, such as CityGML (Technical University, Berlin), a standard for exchanging three-dimensional models or urban city objects, are welcomed. However, information from other domains of interest (e.g. energy efficiency or building information modeling) is needed for tasks such as land planning, large-scale flooding analysis, or demand/supply energy simulations. CityGML allows extension in order to integrate information from other domains, but the development process is expensive because there is no way to perform it automatically. The discovery of correspondences between CityGML concepts and other domains concepts poses a significant challenge. Ontology matching is the research field emerged from the Semantic Web to address automatic ontology integration. Using the ontology underlying CityGML and the ontologies which model other domains of interest, ontology matching would be able to find the correspondences that would permit the integration in a more automatic manner than it is done now. In this paper, we evaluate if ontology matching techniques allow performing an automatic integration of geospatial information modeled from different viewpoints. In order to achieve this, an evaluation methodology was designed, and it was applied to the discovery of relationships between CityGML and ontologies coming from the building information modeling and Geospatial Semantic Web domains. The methodology and the results of the evaluation are presented. The best results have been achieved using string-based techniques, while matching systems give the worst precision and recall. Only in a few cases the values are over 50%, which shows the limitations when these techniques are applied to ontologies with a partial overlap.
机译:标准化是互操作性的支柱之一。在这种情况下,欢迎开放地理空间联盟(如CityGML(柏林工业大学),它是交换三维模型或城市对象的标准)推动的工作。但是,诸如土地规划,大规模洪水分析或需求/供应能源模拟之类的任务需要来自其他感兴趣领域的信息(例如,能源效率或建筑信息模型)。 CityGML允许扩展以便集成来自其他域的信息,但是开发过程非常昂贵,因为无法自动执行它。 CityGML概念与其他领域概念之间的对应关系的发现提出了重大挑战。本体匹配是语义网中出现的致力于自动本体集成的研究领域。使用底层CityGML的本体和对其他感兴趣的领域建模的本体,本体匹配将能够找到对应关系,从而可以比现在更自动地进行集成。在本文中,我们评估了本体匹配技术是否允许执行从不同角度建模的地理空间信息的自动集成。为了实现这一目标,设计了一种评估方法,并将其应用于CityGML与来自建筑信息模型和地理空间语义Web域的本体之间的关系发现。介绍了评估方法和评估结果。使用基于字符串的技术已获得最佳结果,而匹配系统的精度和查全率却最差。仅在少数情况下,该值才超过50%,这显示了将这些技术应用于部分重叠的本体时的局限性。

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