Towards a Cross-Layer Framework for Accurate Power Modeling of Microprocessor Designs

Monir Zaman, M. Shihab, A. Coskun, Y. Makris
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引用次数: 2

Abstract

While state-of-the-art system-level simulators can deliver swift estimation of power dissipation for microprocessor designs, they do so at the expense of reduced accuracy. On the other hand, RTL simulators are typically cycle-accurate but overwhelmingly time consuming for real-life workloads. Consequently, the design community often has to make a compromise between accuracy and speed. In this work, we propose a novel cross-layer approach that can enable accurate power estimation by carefully integrating components from system-level and RTL simulation of the target design. We first leverage the concept of simulation points to transform the workload application and isolate its most critical segments. We then profile the highest weighted simulation point (HWSP) with a RTL simulator (AnyCore) for maximum accuracy, while the rest are simulated with a system-level simulator (gem5) for ensuring fast evaluation. Finally, we combine the integrated set of profiling data as input to the power simulator (McPAT). Our evaluation results for three different SPEC2006 benchmark applications demonstrate that our proposed cross-layer framework can improve the power estimation accuracy by up to 15% for individual simulation points and by ~9% for the full application, compared to that of a conventional system-level simulation scheme.
面向微处理器设计精确功率建模的跨层框架
虽然最先进的系统级模拟器可以为微处理器设计提供快速的功耗估计,但它们是以降低精度为代价的。另一方面,RTL模拟器通常是周期精确的,但对于实际工作负载来说非常耗时。因此,设计界经常不得不在精度和速度之间做出妥协。在这项工作中,我们提出了一种新的跨层方法,可以通过仔细集成来自系统级和目标设计的RTL仿真的组件来实现准确的功率估计。我们首先利用模拟点的概念来转换工作负载应用程序并隔离其最关键的部分。然后,我们使用RTL模拟器(AnyCore)对最高加权模拟点(HWSP)进行配置,以获得最大的精度,而其余部分则使用系统级模拟器(gem5)进行模拟,以确保快速评估。最后,我们将集成的分析数据集作为功率模拟器(McPAT)的输入。我们对三种不同的SPEC2006基准测试应用的评估结果表明,与传统的系统级模拟方案相比,我们提出的跨层框架可以将单个模拟点的功率估计精度提高15%,将整个应用的功率估计精度提高9%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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