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Scaling Hop-Based Reachability Indexing for Fast Graph Pattern Query Processing

机译:基于比例跃点的可达性索引,用于快速图形模式查询处理

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摘要

Graphs are becoming increasingly dominant in modeling real-life networked data including social and biological networks, the WWW and the Semantic Web, etc. Graph pattern queries are useful for gathering information with expressive semantics from these graph-structured data. Current methods for graph pattern query processing have performance deficiency caused by inefficiencies of the underlying reachability index and costly merge-join operations on huge amounts of tuple-formatted intermediate results. To overcome the above problems, this paper contributes in the following aspects to boost graph pattern query evaluation. First, we propose an improved hop-based reachability indexing scheme 3-Hop* which gains faster reachability query evaluation, less indexing costs and better scalabilities than state-of-the-art hop-based methods. Second, we propose a two-stage node filtering algorithm based on 3-Hop* to answer tree pattern queries more efficiently. Tree pattern queries serve as the underlying facility for graph pattern query evaluation. Furthermore, we use a graph representation of the intermediate results during node filtering and final results enumeration. Experiments on real-life and synthetic datasets demonstrate the effectiveness of the proposed methods.
机译:图在建模包括社会和生物网络,WWW和语义网等的现实网络数据方面正变得越来越占主导地位。图模式查询对于从这些图结构化数据中收集具有表达语义的信息非常有用。当前的图形模式查询处理方法存在性能不足的问题,这是由于底层可达性索引的效率低下以及对大量元组格式的中间结果进行的昂贵的合并联接操作所致。为了克服上述问题,本文在以下几个方面做出了贡献,以促进图形模式查询评估。首先,我们提出了一种改进的基于跃点的可达性索引方案3-Hop *,它比最新的基于跃点的方法具有更快的可达性查询评估,更少的索引成本和更好的可伸缩性。其次,我们提出了一种基于3-Hop *的两阶段节点过滤算法,以更有效地回答树模式查询。树模式查询用作图模式查询评估的基础设施。此外,我们在节点过滤和最终结果枚举期间使用中间结果的图形表示。在现实生活和综合数据集上的实验证明了该方法的有效性。

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