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Analytical Communication Performance Models as a metric in the partitioning of data-parallel kernels on heterogeneous platforms

机译:分析通信性能模型作为异构平台上数据并行内核分区的度量

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Data partitioning on heterogeneous HPC platforms is formulated as an optimization problem. The algorithm departs from the communication performance models of the processes representing their speeds and outputs a data tiling that minimizes the communication cost. Traditionally, communication volume is the metric used to guide the partitioning, but such metric is unable to capture the complexities introduced by uneven communication channels and the variety of patterns in the kernel communications. We discuss Analytical Communication Performance Models as a new metric in partitioning algorithms. They have not been considered in the past because of two reasons: prediction inaccuracy and lack of tools to automatically build and solve kernel communication formal expressions. We show how communication performance models fit the specific kernel and platform, and we present results that equal or even improve previous volume-based strategies.
机译:异构HPC平台上的数据分区被表述为优化问题。该算法与代表其速度的进程的通信性能模型不同,并输出使通信成本最小化的数据切片。传统上,通信量是用于指导分区的度量,但是这种度量无法捕获不平衡的通信通道和内核通信中各种模式所带来的复杂性。我们讨论分析通信性能模型作为分区算法中的一种新指标。过去没有考虑它们的原因有两个:预测不准确和缺乏自动构建和求解内核通信形式表达式的工具。我们展示了通信性能模型如何适合特定的内核和平台,并且我们提出的结果与以前的基于数量的策略相当甚至有所提高。

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