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On-demand re-optimization of integration flows

机译:按需重新优化集成流程

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Integration flows are used to propagate data between heterogeneous operational systems or to consolidate data into data warehouse infrastructures. In order to meet the increasing need of up-to-date information, many messages are exchanged over time. The efficiency of those integration flows is therefore crucial to handle the high load of messages and to reduce message latency. State-of-the-art strategies to address this performance bottleneck are based on incremental statistic maintenance and periodic cost-based re-optimization. This also achieves adaptation to unknown statistics and changing workload characteristics, which is important since integration flows are deployed for long time horizons. However, the major drawbacks of periodic re-optimization are many unnecessary re-optimization steps and missed optimization opportunities due to adaptation delays. In this paper, we therefore propose the novel concept of on-demand re-optimization. We exploit optimality conditions from the optimizer in order to (1) monitor optimality of the current plan, and (2) trigger directed re-optimization only if necessary. Furthermore, we introduce the PlanOptimalityTree as a compact representation of optimality conditions that enables efficient monitoring and exploitation of these conditions. As a result and in contrast to existing work, re-optimization is immediately triggered but only if a new plan is certain to be found. Our experiments show that we achieve near-optimal re-optimization overhead and fast workload adaptation.
机译:集成流用于在异构操作系统之间传播数据或将数据整合到数据仓库基础架构中。为了满足对最新信息的不断增长的需求,随着时间的推移交换了许多消息。因此,这些集成流程的效率对于处理高消息负载和减少消息等待时间至关重要。解决此性能瓶颈的最新策略是基于增量统计维护和基于定期成本的重新优化。这还实现了对未知统计信息的适应和不断变化的工作负载特征,这很重要,因为集成流已部署了很长时间。但是,周期性重新优化的主要缺点是许多不必要的重新优化步骤以及由于适应延迟而错过的优化机会。因此,在本文中,我们提出了按需重新优化的新概念。我们利用优化器的优化条件来(1)监视当前计划的优化,并且(2)仅在必要时触发定向的重新优化。此外,我们将PlanOptimalityTree引入为最优条件的紧凑表示形式,以实现对这些条件的有效监视和利用。结果,与现有工作相反,仅当确定要找到新计划时,才立即触发重新优化。我们的实验表明,我们实现了近乎最佳的重新优化开销和快速的工作负载适应性。

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