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A fine-grained evaluation of SPARQL endpoint federation systems

机译:SPARQL端点联合系统的细粒度评估

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摘要

The Web of Data has grown enormously over the last years. Currently, it comprises a large compendium of interlinked and distributed datasets from multiple domains. Running complex queries on this compendium often requires accessing data from different endpoints within one query. The abundance of datasets and the need for running complex query has thus motivated a considerable body of work on SPARQL query federation systems, the dedicated means to access data distributed over the Web of Data. However, the granularity of previous evaluations of such systems has not allowed deriving of insights concerning their behavior in different steps involved during federated query processing. In this work, we perform extensive experiments to compare state-of-the-art SPARQL endpoint federation systems using the comprehensive performance evaluation framework FedBench. In addition to considering the tradition query runtime as an evaluation criterion, we extend the scope of our performance evaluation by considering criteria, which have not been paid much attention to in previous studies. In particular, we consider the number of sources selected, the total number of SPARQL ASK requests used, the completeness of answers as well as the source selection time. Yet, we show that they have a significant impact on the overall query runtime of existing systems. Moreover, we extend FedBench to mirror a highly distributed data environment and assess the behavior of existing systems by using the same performance criteria. As the result we provide a detailed analysis of the experimental outcomes that reveal novel insights for improving current and future SPARQL federation systems.
机译:在过去的几年中,数据网络的发展极大。当前,它包含大量来自多个域的互连和分布式数据集。在此纲要上运行复杂的查询通常需要访问一个查询中来自不同端点的数据。因此,大量的数据集和运行复杂查询的需求激发了SPARQL查询联合系统上大量工作的开展,SPARQL查询联合系统是访问分布在Web数据网上的数据的专用方式。但是,此类系统以前的评估粒度无法得出有关在联合查询处理过程中涉及的不同步骤中其行为的见解。在这项工作中,我们进行了广泛的实验,以使用综合性能评估框架FedBench比较最先进的SPARQL端点联合系统。除了将传统查询运行时作为评估标准之外,我们还通过考虑标准扩展了性能评估的范围,而在先前的研究中并未对此给予足够的重视。特别是,我们将考虑选择的来源数量,使用的SPARQL ASK请求总数,答案的完整性以及来源选择时间。但是,我们表明它们对现有系统的整体查询运行时间有重大影响。此外,我们扩展了FedBench以镜像高度分散的数据环境,并使用相同的性能标准来评估现有系统的行为。结果,我们提供了对实验结果的详细分析,揭示了改善当前和未来SPARQL联邦系统的新颖见解。

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