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High-Precision Power Modelling of the Tegra K1 Variable SMP Processor Architecture

机译:TEGRA K1变量SMP处理器架构的高精度功率建模

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摘要

Energy efficiency is an important issue for many embedded systems, where limited battery lifetime and powerhungry hardware constrain the usefulness of such devices. Modern Systems-on-Chip (SoCs) such as the Tegra K1 employ advanced power management capabilities such as two CPU clusters, clock-gating, power-gating and dynamic frequency tuning to meet application demands. At design or runtime phases, it is challenging for system architects and software developers to understand the effects that these mechanisms have in terms of power and performance in all parts of the system. This is because it is impossible to measure directly the power usage of cores, caches, memory and other hardware components. Rate based power models are often proposed as a solution for this, unfortunately these can mispredict substantially on the Tegra K1 up to 30 %. In this paper, we propose a power modelling method for the Tegra K1 CPU which overcomes the limitations of the most common types of models found in literature, but still only requires power measurement of the board. Through extensive empirical validation, we demonstrate an accuracy which is close to 100 %. Preliminary experiments show that our methodology is able to capture instruction power of individual system processes and applications and produce detailed power breakdowns of all components in the system.
机译:能效是许多嵌入式系统的重要问题,其中电池寿命有限,电力有限的硬件限制了这种装置的有用性。现代系统的片上系统(SOC),如Tegra K1采用先进的电源管理功能,如两个CPU集群,时钟门,电源门控和动态频率调整,以满足应用需求。在设计或运行时阶段,系统架构师和软件开发人员挑战了解这些机制在系统所有部分中的功率和性能方面的影响。这是因为无法直接测量核心,高速缓存,内存和其他硬件组件的电源使用。通常提出基于速率的功率模型作为这样的解决方案,遗憾的是,这些可以在Tegra K1上大量误解高达30%。在本文中,我们提出了一种用于Tegra K1 CPU的功率建模方法,它克服了文献中发现的最常见类型的模型的局限性,但仍然只需要电路板的功率测量。通过广泛的经验验证,我们展示了接近100%的准确性。初步实验表明,我们的方法能够捕获各个系统流程和应用的指令力,并在系统中产生所有组件的详细功率故障。

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