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Cost-aware scheduling of deadline-constrained task workflows in public cloud environments

机译:公共云环境中限期约束任务工作流的成本感知调度

摘要

Public cloud computing infrastructure offers resources on-demand, and makes it possible to develop applications that elastically scale when demand changes. This capacity can be used to schedule highly parallellizable task workflows, where individual tasks consist of many small steps. By dynamically scaling the number of virtual machines used, based on varying resource requirements of different steps, lower costs can be achieved, and workflows that would previously have been infeasible can be executed. In this paper, we describe how task workflows consisting of large numbers of distributable steps can be provisioned on public cloud infrastructure in a cost-efficient way, taking into account workflow deadlines. We formally define the problem, and describe an ILP-based algorithm and two heuristic algorithms to solve it. We simulate how the three algorithms perform when scheduling these task workflows on public cloud infrastructure, using the various instance types of the Amazon EC2 cloud, and we evaluate the achieved cost and execution speed of the three algorithms using two different task workflows based on a document processing application.
机译:公共云计算基础架构按需提供资源,并使得开发可在需求变化时灵活扩展的应用程序成为可能。此功能可用于安排高度可并行化的任务工作流,其中单个任务由许多小步骤组成。通过根据不同步骤的不同资源要求动态扩展使用的虚拟机的数量,可以降低成本,并且可以执行以前不可行的工作流程。在本文中,我们描述了如何在考虑工作流截止日期的情况下,以经济高效的方式在公共云基础架构上提供由大量可分配步骤组成的任务工作流。我们正式定义问题,并描述一种基于ILP的算法和两种启发式算法来解决该问题。我们使用Amazon EC2云的各种实例类型在公共云基础设施上调度这些任务工作流时模拟这三种算法的性能,并基于一个文档使用两个不同的任务工作流评估这三种算法的实现成本和执行速度处理申请。

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