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Provenance-Aware Knowledge Representation: A Survey of Data Models and Contextualized Knowledge Graphs

机译:源自感知知识表示:数据模型和上下文知识图表的调查

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Expressing machine-interpretable statements in the form of subject-predicate-object triples is a well-established practice for capturing semantics of structured data. However, the standard used for representing these triples, RDF, inherently lacks the mechanism to attach provenance data, which would be crucial to make automatically generated and/or processed data authoritative. This paper is a critical review of data models, annotation frameworks, knowledge organization systems, serialization syntaxes, and algebras that enable provenance-aware RDF statements. The various approaches are assessed in terms of standard compliance, formal semantics, tuple type, vocabulary term usage, blank nodes, provenance granularity, and scalability. This can be used to advance existing solutions and help implementers to select the most suitable approach (or a combination of approaches) for their applications. Moreover, the analysis of the mechanisms and their limitations highlighted in this paper can serve as the basis for novel approaches in RDF-powered applications with increasing provenance needs.
机译:以主题谓词 - 对象三元组的形式表达机器可解释的陈述是捕获结构化数据语义的既定实践。然而,用于代表这些三元组的标准RDF固有地缺少附加出处数据的机制,这对于自动生成和/或处理数据权威来说是至关重要的。本文是对数据模型,注释框架,知识组织系统,序列化语法和代数的关键审查,使能出来感知RDF语句。各种方法是根据标准合规性,形式语义,元组型,词汇项使用,空白节点,出处粒度和可扩展性的。这可用于推进现有解决方案,并帮助实现者为其应用选择最合适的方法(或方法的组合)。此外,本文突出显示机制及其限制的分析可以作为RDF供电应用中的新方法的基础,随着出处的需求。

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