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Improving computer architecture simulation methodology by adding statistical rigor

机译:通过增加统计严格性来改进计算机体系结构仿真方法

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Due to cost, time, and flexibility constraints, computer architects use simulators to explore the design space when developing new processors and to evaluate the performance of potential enhancements. However, despite this dependence on simulators, statistically rigorous simulation methodologies are typically not used in computer architecture research. A formal methodology can provide a sound basis for drawing conclusions gathered from simulation results by adding statistical rigor and, consequently, can increase the architect's confidence in the simulation results. This paper demonstrates the application of a rigorous statistical technique to the setup and analysis phases of the simulation process. Specifically, we apply a Plackett and Burman design to: 1) identify key processor parameters, 2) classify benchmarks based on how they affect the processor, and 3) analyze the effect of processor enhancements. Our results showed that, out of the 41 user-configurable parameters in SimpleScalar, only 10 had a significant effect on the execution time. Of those 10, the number of reorder buffer entries and the L2 cache latency were the two most significant ones, by far. Our results also showed that instruction precomputation - a value reuse-like microarchitectural technique - primarily improves the processor's performance by relieving integer ALU contention.
机译:由于成本,时间和灵活性的限制,计算机架构师在开发新处理器时使用模拟器来探索设计空间并评估潜在增强功能的性能。但是,尽管这种依赖模拟器的方法,在计算机体系结构研究中通常不使用统计上严格的模拟方法。正式的方法可以通过增加统计严格性来为从模拟结果中得出结论得出合理的依据,从而可以提高架构师对模拟结果的信心。本文演示了严格的统计技术在模拟过程的设置和分析阶段中的应用。具体来说,我们将Plackett和Burman设计应用于以下方面:1)识别关键处理器参数,2)根据基准对处理器的影响方式对基准进行分类,以及3)分析处理器增强效果。我们的结果表明,在SimpleScalar中的41个用户可配置参数中,只有10个对执行时间有重大影响。在这10个中,到目前为止,重排序缓冲区条目的数量和二级缓存的延迟是最重要的两个。我们的结果还表明,指令预计算-一种类似于值重用的微体系结构技术-通过减轻整数ALU争用,主要提高了处理器的性能。

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