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Priority-Based Balance Scheduling in Real-Time Data Warehouse

机译:实时数据仓库中基于优先级的余额调度

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In real-time data warehouses, data import is no longer implemented in the batched and periodic way during the idle time of data warehouses, but continuously ongoing. The updates of real-time data warehouses are conflict with queries against data warehouses. Thus the scheduling of updates and queries becomes a key issue. This paper proposes a priority-based balance scheduling algorithm (PBBS). Firstly, according to the response time requirements of queries and the different import levels of the data being updated, the algorithm gives different priorities to all tasks. Then it makes a parallel scheduling, considering the task priorities, the implementation conditions of task queues and the feedback of system resources. And it proposes a method that ensures data consistency for parallel tasks. Finally, the experiments show that the algorithm is not only able to adjust the resources allocation for updates and queries in accordance with user requirements, but also make rational use of system resources and ensure high-priority tasks are processed first. Thus it not only reduces the response time of the important queries, but enhances the data freshness of the important data.
机译:在实时数据仓库中,数据导入不再以批量和周期性的方式实现数据仓库的空闲时间,但不断持续。实时数据仓库的更新与针对数据仓库的查询发生冲突。因此,更新和查询的调度成为关键问题。本文提出了基于优先级的余额调度算法(PBB)。首先,根据查询的响应时间要求和更新的数据的不同导入级别,算法给出了所有任务的不同优先级。然后,它进行了并行调度,考虑任务优先级,任务队列的实现条件以及系统资源的反馈。它提出了一种方法,可确保并行任务的数据一致性。最后,实验表明,该算法不仅能够根据用户要求调整更新和查询的资源分配,还可以根据系统资源进行合理使用,并确保首先处理高优先级任务。因此,它不仅减少了重要查询的响应时间,而且增强了重要数据的数据新鲜度。

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