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Matching Law Ontologies using an Extended Argumentation Framework based on Confidence Degrees

机译:使用基于置信度的扩展争论框架匹配法律本体

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Law information retrieval systems use law ontologies to represent semantic objects, to associate them with law documents and to make inferences about them. A number of law ontologies have been proposed in the literature, what shows the variety of approaches pointing to the need of matching systems. We present a proposal based on argumentation to match law ontologies, as an approach to be considered for this problem. Argumentation is used to combine different techniques for ontology matching. Such approaches are encapsulated by agents that apply individual matching algorithms and cooperate in order to exchange their local results (arguments). Next, based on their preferences and confidence, the agents compute their preferred matching sets. The arguments in such preferred sets are viewed as the set of globally acceptable arguments. We show the applicability of our model matching two legal core ontologies: LKIF and CLO.
机译:法律信息检索系统使用法律本体代表语义对象,将他们与法律文件联系起来并对他们进行推断。在文献中提出了许多法律本体,其中显示了指向匹配系统需要的各种方法。我们提出了一项基于论证来匹配法律本体的提案,作为对此问题的一种方法。论证用于将不同的本体匹配技术结合起来。这种方法被用于应用单个匹配算法的代理封装并配合以交换其本地结果(参数)。接下来,基于他们的偏好和置信度,代理计算他们的优选匹配集。此类优选集中的参数被视为全局可接受的参数集。我们展示了我们模型匹配的两个法律核心本体:LKIF和CLO的适用性。

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