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A Model for the Distribution Design of Distributed Databases and an Approach to Solve Large Instances

机译:分布式数据库分布设计模型及解决大型实例的方法

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In this paper we approach the solution of large instances of the distribution design problem. Traditional approaches do not consider that the size of the instances can significantly affect the efficiency of the solution process. This paper shows the feasibility to solve large scale instances of the distribution design problem by compressing the instance to be solved. The goal of the compression is to obtain a reduction in the amount of resources needed to solve the original instance, without significantly reducing the quality of its solution. In order to preserve the solution quality, the compression summarizes the access pattern of the original instance using clustering techniques. In order to validate the approach we tested it on a new model of the replicated version of the distribution design problem that incorporates generalized database objects. The experimental results show that our approach permits to reduce the computational resources needed for solving large instances, using an efficient clustering algorithm. We present experimental evidence of the clustering efficiency of the algorithm.
机译:在本文中,我们探讨了分布设计问题的大型实例的解决方案。传统方法不认为实例的大小可以显着影响解决方案过程的效率。本文显示了通过压缩要解决的实例来解决分布设计问题的大规模实例的可行性。压缩的目标是获得解决原始实例所需的资源量的减少,而不会显着降低其解决方案的质量。为了保留解决方案质量,压缩总结了使用聚类技术的原始实例的访问模式。为了验证方法,我们在包含概括数据库对象的分布设计问题的复制版本的新模型上测试了它。实验结果表明,我们的方法允许使用有效的聚类算法来减少解决大型实例所需的计算资源。我们呈现了算法聚类效率的实验证据。

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