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Elasticity in Cloud Databases and Their Query Processing

机译:云数据库的弹性及其查询处理

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A central promise of cloud services is elastic, on-demand provisioning. The provisioning of data on temporarily available nodes is what makes elastic database services a hard problem. The essential task that enables elastic data sei'vices is bringing a node and its data up-to-date. Strategies for high availability do not satisfy the need in this context because they bring nodes online and up-to-date by repeating history, e.g., by log shipping. Nodes must become up-to-date and useful for query processing incrementally by key range. What is wanted is a technique such that in a newly added node, during each short period of time, an additional small key range becomes up-to-date, until eventually the entire dataset becomes up-to-date and useful for query processing, with overall update performance comparable to a traditional high-availability strategy that carries the entire dataset forward without regard to key ranges. Even without the entire dataset being available, the node is productive and participates in query processing tasks. The authors'proposed solution relies on techniques from partitioned B-trees, adaptive merging, deferred maintenance of secondary indexes and of materialized views, and query optimization using materialized views. The paper introduces a family of maintenance strategies for temporarily available copies, the space of possible query execution plans and their cost functions, as well as appropriate query optimization techniques.
机译:云服务的核心承诺是弹性的按需配置。在临时可用的节点上提供数据使弹性数据库服务成为一个难题。启用弹性数据服务的基本任务是使节点及其数据保持最新。高可用性策略不能满足这种情况下的需求,因为它们通过重复历史记录(例如通过日志传送)使节点联机并保持最新状态。节点必须是最新的,并且对于按键范围递增地进行查询处理很有用。所需要的是一种技术,在新添加的节点中,每个较短的时间段内,都会有一个额外的小键范围变为最新状态,直到最终整个数据集变为最新状态并且对查询处理有用,整体更新性能可与传统的高可用性策略相提并论,该策略无需考虑关键范围即可将整个数据集向前传送。即使没有可用的整个数据集,该节点也可以生产并参与查询处理任务。作者提出的解决方案依赖于分区B树,自适应合并,二级索引和物化视图的延迟维护以及使用物化视图进行查询优化的技术。本文介绍了针对临时可用副本的维护策略系列,可能的查询执行计划的空间及其成本函数以及适当的查询优化技术。

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