关系型与rdf时态数据交换与查询应答的理论与实践

IF 1.5 Q3 COMPUTER SCIENCE, INFORMATION SYSTEMS
J. Ao, Zehui Cheng, Rada Y. Chirkova, Phokion G. Kolaitis
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引用次数: 0

摘要

我们考虑在非时态RDFS域本体、包含时态信息的关系数据源以及将源模式中的域信息映射到目标本体的规则的存在下,回答RDF存储上的时态查询的问题。我们提出的面向实践的解决方案由两个基于规则的领域独立算法组成。第一种算法通过一个数据交换版本实现目标RDF数据,该版本使用来自关系源的时态信息丰富了数据和本体。第二种算法使用SPARQL的轻量级时间扩展,接受用领域本体表示的时间查询作为输入,并确保对物化的时间丰富的RDF数据成功地评估查询。为了研究算法生成的信息的质量,我们开发了一个通用框架,将关系到rdf的时态数据交换问题形式化。该框架包括一个追逐形式和一个在关系到rdf时态数据交换的上下文中回答时态查询问题的形式化解决方案。在本文中,我们给出了算法和证明算法输出信息正确性的形式化框架,并报告了算法的实现和两个应用领域的实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Theory and Practice of Relational-to-RDF Temporal Data Exchange and Query Answering
We consider the problem of answering temporal queries on RDF stores, in presence of atemporal RDFS domain ontologies, of relational data sources that include temporal information, and of rules that map the domain information in the source schemas into the target ontology. Our proposed practice-oriented solution consists of two rule-based domain-independent algorithms. The first algorithm materializes target RDF data via a version of data exchange that enriches both the data and the ontology with temporal information from the relational sources. The second algorithm accepts as inputs temporal queries expressed in terms of the domain ontology using a lightweight temporal extension of SPARQL, and ensures successful evaluation of the queries on the materialized temporally-enriched RDF data. To study the quality of the information generated by the algorithms, we develop a general framework that formalizes the relational-to-RDF temporal data-exchange problem. The framework includes a chase formalism and a formal solution for the problem of answering temporal queries in the context of relational-to-RDF temporal data exchange. In this article, we present the algorithms and the formal framework that proves correctness of the information output by the algorithms, and also report on the algorithm implementation and experimental results for two application domains.
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来源期刊
ACM Journal of Data and Information Quality
ACM Journal of Data and Information Quality COMPUTER SCIENCE, INFORMATION SYSTEMS-
CiteScore
4.10
自引率
4.80%
发文量
0
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