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An integrated approach to workflow mapping and task scheduling for delay minimization in distributed environments

机译:一种用于工作流映射和任务调度的集成方法,用于在分布式环境中最小化延迟

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Many scientific applications feature large-scale workflows consisting of computing modules that must be strategically deployed and executed in distributed environments. The end-to-end performance of such scientific workflows depends on both the mapping scheme that determines module assignment, and the scheduling policy that determines resource allocation if multiple modules are mapped to the same node. These two aspects of workflow optimization are traditionally treated as two separated topics, and the interactions between them have not been fully explored by any existing efforts. As the scale of scientific workflows and the complexity of network environments rapidly increase, each individual aspect of performance optimization alone can only meet with limited success. We conduct an in-depth investigation into workflow execution dynamics in distributed environments and formulate a generic problem that considers both workflow mapping and task scheduling to minimize the end-to-end delay of workflows. We propose an integrated solution, referred to as Mapping and Scheduling Interaction (MSI), to improve the workflow performance. The efficacy of MSI is illustrated by both extensive simulations and proof-of-concept experiments using real-life scientific workflows for climate modeling on a PC cluster.
机译:许多科学应用程序都具有大规模的工作流,这些工作流由必须在分布式环境中进行策略性部署和执行的计算模块组成。这样的科学工作流的端到端性能取决于确定模块分配的映射方案和确定多个模块被映射到同一节点的资源分配的调度策略。传统上,工作流优化的这两个方面被视为两个独立的主题,并且现有的工作还没有充分探讨它们之间的相互作用。随着科学工作流程的规模和网络环境的复杂性迅速增加,仅性能优化的每个方面都只能取得有限的成功。我们对分布式环境中的工作流执行动态进行了深入研究,并提出了同时考虑工作流映射和任务调度的通用问题,以最大程度地减少工作流的端到端延迟。我们提出了一种集成的解决方案,称为映射和计划交互(MSI),以提高工作流性能。通过使用真实的科学工作流在PC群集上进行气候建模,广泛的模拟和概念验证实验都说明了MSI的有效性。

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