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Optimal dynamic remapping of data parallel computations

机译:数据并行计算的最佳动态重映射

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A large class of data parallel computations is characterized by a sequence of phases, with phase changes occurring unpredictably. Dynamic remapping of the workload to processors may be required to maintain good performance. The problem considered, for which the utility of remapping and the future behavior of the workload are uncertain, arises when phases exhibit stable execution requirements during a given phase, but requirements change radically between phases. For these situations, a workload assignment generated for one phase may hinder performance during the next phase. This problem is treated formally for a probabilistic model of computation with at most two phases. The authors address the fundamental problem of balancing the expected remapping performance gain against the delay cost, and they derive the optimal remapping decision policy. The promise of the approach is shown by application to multiprocessor implementations of an adaptive gridding fluid dynamics program and to a battlefield simulation program.
机译:大量的数据并行计算的特征在于一系列的相位,其中相位变化不可预测地发生。为了保持良好的性能,可能需要将工作负载动态重新映射到处理器。当阶段在给定阶段中表现出稳定的执行需求,但需求在各个阶段之间发生根本变化时,就会出现所考虑的问题,即重新映射的用途和工作负载的未来行为不确定。对于这些情况,为一个阶段生成的工作负载分配可能会影响下一阶段的性能。对于最多具有两个阶段的概率计算模型,已正式解决此问题。作者解决了平衡预期的重映射性能收益与延迟成本之间的基本问题,并得出了最佳的重映射决策策略。通过将其应用于自适应网格流体动力学程序的多处理器实现以及战场仿真程序,可以证明该方法的前景。

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