A new methodology for reduced cost of resilience

A. Kahng, Seokhyeong Kang, Jiajia Li
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引用次数: 8

Abstract

Resilient design techniques are used to (i) ensure correct operation under dynamic variations; and (ii) improve design performance (e.g., through timing speculation). However, significant overheads (e.g., 17% and 15% energy penalties due to throughput degradation and additional circuits) are incurred by existing resilient design techniques. For instance, resilient designs require additional circuits to detect and correct timing errors. Further, when there is an error, the additional cycles needed to restore a previous correct state degrade throughput, which diminishes the performance benefit of using resilient designs. In this work, we propose a methodology for resilient design implementation to minimize the costs of resilience in terms of power, area and throughput degradation. Our methodology uses two levers: selective-endpoint optimization (i.e., sensitivity-based margin insertion) and clock skew optimization. We integrate the two optimization techniques in an iterative optimization flow which comprehends toggle rate information and the tradeoff between cost of resilience and margin on combinational paths. Our proposed flow achieves energy reductions of up to 19% and 21% compared to a conventional design (with only margin used to attain robustness) and a brute-force implementation, respectively. These benefits increase in the context of an adaptive voltage scaling strategy.
一种降低弹性成本的新方法
弹性设计技术用于(i)确保在动态变化下的正确操作;(ii)提高设计性能(例如,通过时间推测)。然而,现有的弹性设计技术产生了显著的开销(例如,由于吞吐量下降和额外电路而导致的17%和15%的能量损失)。例如,弹性设计需要额外的电路来检测和纠正定时错误。此外,当出现错误时,恢复先前正确状态所需的额外周期会降低吞吐量,从而降低使用弹性设计的性能优势。在这项工作中,我们提出了一种弹性设计实施方法,以最大限度地减少弹性在功率,面积和吞吐量退化方面的成本。我们的方法使用两个杠杆:选择性端点优化(即,基于灵敏度的边际插入)和时钟倾斜优化。我们将两种优化技术整合在一个迭代优化流程中,该流程理解切换率信息以及组合路径上弹性成本和边际之间的权衡。与传统设计(仅用于获得稳健性)和强力实施相比,我们提出的流程分别实现了19%和21%的能耗降低。这些好处在自适应电压缩放策略的背景下增加。
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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