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首页> 外文期刊>International Journal of Information Technology & Decision Making >A MAUT APPROACH FOR REUSING DOMAIN ONTOLOGIES ON THE BASIS OF THE NeOn METHODOLOGY
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A MAUT APPROACH FOR REUSING DOMAIN ONTOLOGIES ON THE BASIS OF THE NeOn METHODOLOGY

机译:一种基于Neon方法论的域本体重用的方法

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摘要

Knowledge resource reuse is becoming a widespread approach in the ontology engineering field because it can speed up the ontology development process. In this context, the NeOn Methodology specifies some guidelines for reusing different types of knowledge resources (ontologies, nonontological resources, and ontology design patterns). These guidelines prescribe how to perform the different activities involved in any of the diverse types of reuse processes. One such activity is to select the best knowledge resources for reuse in an ontology development. This selection activity is a complex decision-making problem involving conflicting objectives, like understandability, integration or reliability. We propose a multiattribute utility theory (MAUT) approach to deal with the selection of the best domain ontologies for reuse, stressing the identification of attributes to measure ontology performances. We take advantage of the sensitivity analysis tools provided by the GMAA system, a PC-based decision support system based on an additive multi-attribute utility model, to exploit imprecise information on the inputs. An example concerning the selection of a subset of ontologies for reuse in the development of a new ontology in the sports domain illustrates the approach.
机译:知识资源的重用可以加快本体的开发过程,因此正成为本体工程领域中一种普遍的方法。在这种情况下,NeOn方法论为重用不同类型的知识资源(本体论,非本体论资源和本体论设计模式)规定了一些准则。这些准则规定了如何执行各种类型的重用过程中涉及的不同活动。一种这样的活动是选择最佳知识资源以在本体论开发中重用。这项选择活动是一个复杂的决策问题,涉及相互矛盾的目标,例如易懂性,集成性或可靠性。我们提出了一种多属性效用理论(MAUT)方法来处理最佳的领域本体以供重用的选择,着重强调对属性的识别以衡量本体的性能。我们利用GMAA系统提供的敏感性分析工具,该工具是基于PC的决策支持系统,该系统基于加法多属性效用模型,可以利用输入上的不精确信息。一个有关选择本体子集以在运动领域中的新本体开发中重用的示例说明了该方法。

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