资源共享环境下最小化延迟的科学工作流执行动态分析

Yi Gu, C. Wu, N. Rao
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引用次数: 13

摘要

许多计算密集型科学应用程序具有复杂的分布式计算模块工作流和复杂的执行依赖关系。这样的科学工作流程必须在共享环境中进行映射和执行,以支持分布式的科学协作。我们将工作流映射描述为最小化延迟的优化问题,其难点主要来自于空间域的拓扑匹配特性,以及时间维度的资源共享复杂性。我们对工作流执行过程中的资源共享动态进行了严格的分析,为最小化端到端延迟的工作流映射算法奠定了基础。通过与近似解、动态系统仿真程序和实际网络部署的比较,验证了动力学分析的正确性,并通过仿真和实验与现有方法进行了广泛的比较,说明了所提出的映射解的性能优越性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analyzing Execution Dynamics of Scientific Workflows for Latency Minimization in Resource Sharing Environments
Many computation-intensive scientific applications feature complex workflows of distributed computing modules with intricate execution dependencies. Such scientific workflows must be mapped and executed in shared environments to support distributed scientific collaborations. We formulate workflow mapping as an optimization problem for latency minimization, whose difficulty essentially arises from the topological matching nature in the spatial domain, which is further compounded by the resource sharing complicacy in the temporal dimension. We conduct a rigorous analysis of the resource sharing dynamics in workflow executions, which constitutes the base for a workflow mapping algorithm to minimize the end-to-end delay. The correctness of the dynamics analysis is verified in comparison with an approximate solution, a dynamic system simulation program, and a real network deployment, and the performance superiority of the proposed mapping solution is illustrated by extensive comparisons with existing methods using both simulations and experiments.
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