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Long term sustainability of differentially reliable systems in the dark silicon era

机译:在深色硅时代,不同可靠性系统的长期可持续性

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As transistor miniaturization continues, providing robustness and computational correctness comes with rising power, performance, and area overhead costs. However, the diversity of software error tolerance is increasing as modern society embraces ubiquitous computing. This diversity can be exploited by differentially reliable (DR) multicore systems. The rising level of dark silicon–the portion of a chip that must remain inactive due to power budget constraints–makes such DR systems even more attractive when compared to homogeneous designs because power efficiency is improved with the increased flexibility of dynamically selecting appropriate cores for a given software workload. However, ensuring the long-term sustainability of these DR systems is a profound challenge. Asymmetric utilization of cores, differential aging degradation, and manufacturing process variation alter the relative reliability of DR system components, degrading and even eliminating the energy efficiency advantage. In this paper, we propose a feedback control based thread-to-core mapping framework to ensure longterm sustainability and extend the energy efficiency of a DR system. Over a ten-year lifespan, we analyze our approach on two DR design techniques and respectively demonstrate 14.4–16.3% and 26.1–31.0% in sustained energy-efficiency benefits, surpassing the recently proposed race-to-idle approach.
机译:随着晶体管小型化的继续,提供鲁棒性和计算正确性伴随着功率,性能和面积开销成本的上升。然而,随着现代社会接受无处不在的计算,软件容错能力的多样性正在增加。差异可靠(DR)多核系统可以利用这种多样性。暗硅水平的上升(由于功率预算限制而必须保持不活动的芯片部分)使得这种DR系统与同类设计相比更具吸引力,因为功率效率随着动态选择合适内核的灵活性的提高而得以提高。给定软件工作量。但是,确保这些灾难恢复系统的长期可持续性是一项严峻的挑战。磁芯的不对称利用,不同的老化退化和制造工艺变化会改变DR系统组件的相对可靠性,从而降低甚至消除能效优势。在本文中,我们提出了一种基于反馈控制的线程到核心映射框架,以确保长期可持续性并扩展DR系统的能源效率。在十年的使用寿命中,我们分析了两种DR设计技术的方法,并分别证明了14.4–16.3%和26.1–31.0%的持续能源效率效益,这超过了最近提出的“从竞赛到怠速”的方法。

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