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Characterizing the Relation Between Apex-Map Synthetic Probes and Reuse Distance Distributions

机译:表征Apex-Map合成探针与重用距离分布之间的关系

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Characterizing a memory reference stream using reuse distance distribution can enable predicting the performance on a given architecture. Benchmarks can subject an architecture to a limited set of reuse distance distributions, but it cannot exhaustively test it. In contrast, Apex-Map, a synthetic memory probe with parameterized locality, can provide a better coverage of the machine use scenarios. Unfortunately, it requires a lot of expertise to relate an application memory behavior to an Apex-Map parameter set. In this work we present a mathematical formulation that describes the relation between Apex-Map and reuse distance distributions. We also introduce a process through which we can automate the estimation of Apex-Map locality parameters for a given application. This process finds the best parameters for Apex-Map probes that generate a reuse distance distribution similar to that of the original application. We tested this scheme on benchmarks from Scalable Synthetic Compact Applications and Unbalanced Tree Search, and we show that this scheme provides an accurate Apex-Map parameterization with a small percentage of mismatch in reuse distance distributions, about 3% in average and less than 8% in the worst case, on the tested applications.
机译:使用重用距离分布来表征存储器参考流可以使得能够预测给定架构上的性能。基准可以使体系结构受一组有限的重用距离分布的约束,但不能对其进行详尽的测试。相反,Apex-Map是具有参数化局部性的合成内存探针,可以更好地涵盖机器使用情况。不幸的是,它需要大量专业知识才能将应用程序内存行为与Apex-Map参数集相关联。在这项工作中,我们提出了一个数学公式,描述了Apex-Map和重用距离分布之间的关系。我们还介绍了一个过程,通过该过程可以针对给定的应用程序自动估算Apex-Map局部性参数。此过程为Apex-Map探针找到最佳参数,这些探针会生成与原始应用程序相似的重用距离分布。我们在可伸缩合成紧凑型应用程序和不平衡树搜索的基准测试中对该方案进行了测试,结果表明该方案可提供准确的Apex-Map参数化,并且重用距离分布中的失配率很小,平均大约为3%,小于8%最坏的情况是在经过测试的应用程序上。

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