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Scalable Linear Algebra on a Relational Database System

机译:关系数据库系统上可扩展的线性代数

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As data analytics has become an important application for modern data management systems, a new category of data management system has appeared recently: the scalable linear algebra system. We argue that a parallel or distributed database system is actually an excellent platform upon which to build such functionality. Most relational systems already have support for cost-based optimization-which is vital to scaling linear algebra computations-and it is well known how to make relational systems scalable.We show that by making just a few changes to a parallel/distributed relational database system, such a system can become a competitive platform for scalable linear algebra. Taken together, our results should at least raise the possibility that brand new systems designed from the ground up to support scalable linear algebra are not absolutely necessary, and that such systems could instead be built on top of existing relational technology.
机译:由于数据分析已成为现代数据管理系统的重要应用,最近出现了一系列新的数据管理系统:可扩展的线性代数系统。我们争辩说,并行或分布式数据库系统实际上是构建此类功能的优秀平台。大多数关系系统已经支持基于成本的优化 - 这对于缩放线性代数计算至关重要 - 众所周知,如何使关系系统可扩展。我们通过对并行/分布式关系数据库系统进行几个更改,这样的系统可以成为可扩展线性代数的竞争平台。在一起,我们的结果应至少提出从地下设计的全新系统,以支持可扩展的线性代数不是绝对必要的,并且这种系统可以替代地建立在现有的关系技术之上。

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