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A performance model and metrics for fine grain parallel computing systems-finding optimal parallelism

机译:细粒度并行计算系统的性能模型和指标-发现最佳并行性

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Parallel computing, and fine grain computing in particular, need criteria to find optimal parallelism. This paper proposes performance models that measure ability to generate and synchronize parallel processes, and to switch control in parallel processing systems. We consider the performance of controlling the number of parallel processes (synchronization capability), the performance of generating parallel processes (generation capability), and the performance of controlling a computing flow of parallel processes (branch capability) in fine grain parallel computing. We also discuss the usefulness of these performance measures, and prove that optimization is possible by measuring the branch capability of instruction level data flow computers. With optimal parallelism, extraction and control of parallel processes is well-balanced, and the balancing point is specified.
机译:并行计算,尤其是细粒度计算,需要标准来找到最佳的并行性。本文提出了性能模型,用于衡量生成和同步并行过程以及在并行处理系统中切换控制的能力。我们考虑在细粒度并行计算中控制并行进程数的性能(同步能力),生成并行进程的性能(生成能力)以及控制并行进程的计算流程的性能(分支能力)。我们还将讨论这些性能指标的有用性,并通过测量指令级数据流计算机的分支能力来证明优化是可能的。通过最佳并行性,可以很好地平衡并行过程的提取和控制,并指定平衡点。

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