超级计算和科学工作流差距和需求

T. Critchlow, George Chin
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引用次数: 7

摘要

在过去的十年中,工作流已经成功地应用于许多科学领域,并取得了巨大的成功。工作流引擎现在在科学学科中广泛使用,用于自动执行日常任务、收集来源和编排复杂的过程。然而,工作流还没有在超级计算平台上直接管理细粒度的并发任务方面取得重大进展。随着科学计算成为越来越重要的发现方法和高性能计算环境变得越来越复杂,解决这一差距变得至关重要。本文以一个简单的用例为动力,描述了在超级计算环境中使用工作流引擎的当前障碍,并概述了在这种环境中成功应用工作流必须提供的新功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Supercomputing and Scientific Workflows Gaps and Requirements
Over the past decade, workflows have been successfully applied to a number of scientific domains with great success. Workflow engines are now commonly used across scientific disciplines to automate mundane tasks, collect provenance, and orchestrate complex processes. However, workflows have not yet made significant strides managing fine-grain, concurrent tasks directly on supercomputing platforms. As scientific computing becomes an increasingly important discovery method and high performance computing environments become more complex, addressing this gap becomes critical. Using a simple use case as motivation, this paper describes the current barriers to using workflow engines in a supercomputing environment and outlines the new capabilities that must be provided if workflows are to be successfully applied in this context.
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