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NoSQL Databases for RDF: An Empirical Evaluation

机译:用于RDF的NoSQL数据库:实证评估

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摘要

Processing large volumes of RDF data requires sophisticated tools. In recent years, much effort was spent on optimizing native RDF stores and on repurposing relational query engines for large-scale RDF processing. Concurrently, a number of new data management systems-regrouped under the NoSQL (for "not only SQL") umbrella-rapidly rose to prominence and represent today a popular alternative to classical databases. Though NoSQL systems are increasingly used to manage RDF data, it is still difficult to grasp their key advantages and drawbacks in this context. This work is, to the best of our knowledge, the first systematic attempt at characterizing and comparing NoSQL stores for RDF processing. In the following, we describe four different NoSQL stores and compare their key characteristics when running standard RDF benchmarks on a popular cloud infrastructure using both single-machine and distributed deployments.
机译:处理大量RDF数据需要复杂的工具。近年来,在优化本机RDF存储和重新使用关系查询引擎以进行大规模RDF处理方面花费了大量精力。同时,在NoSQL(“不仅限于SQL”)的重组下,许多新的数据管理系统迅速兴起,并成为当今经典数据库的替代方案。尽管NoSQL系统越来越多地用于管理RDF数据,但是在这种情况下仍然很难把握它们的主要优点和缺点。据我们所知,这项工作是对用于RDF处理的NoSQL存储进行表征和比较的首次系统性尝试。在下文中,我们描述了四个不同的NoSQL存储,并在使用单机和分布式部署的流行云基础架构上运行标准RDF基准时,比较了它们的关键特性。

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