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A Design-Specific and Thermally-Aware Methodology for Trading-Off Power and Performance in Leakage-Dominant CMOS Technologies

机译:在泄漏占优势的CMOS技术中权衡功率和性能的一种特定于设计且具有热感知的方法

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摘要

As CMOS technology scales deeper into the nanometer regime, factors such as leakage power and chip temperature emerge as critically important concerns for high-performance VLSI design. Consequently, enhancing processing performance is no longer the most important factor that dominates future circuit design considerations. This paper, for the first time, proposes a systematic methodology to determine a generalized design optimization metric for simultaneously trading-off power and performance in nanometer scale integrated circuits to achieve design-specific targets. The methodology incorporates interconnect effects as well as electrothermal couplings between substrate temperature, power, and performance for nanometer scale design optimization. Implications of choosing a specific design optimization metric on power, performance, and operating temperature are illustrated and discussed. The proposed methodology is shown to provide a more meaningful optimization metric (for power-performance tradeoff analysis) and basis, with considerations of chip-level thermal management including maximum allowable operating temperature and packaging/cooling solutions. Furthermore, implications of CMOS technology scaling and parameter variations on the proposed methodology are discussed.
机译:随着CMOS技术更深入地扩展到纳米技术领域,诸如泄漏功率和芯片温度等因素成为高性能VLSI设计的至关重要的问题。因此,提高处理性能不再是支配未来电路设计考虑因素的最重要因素。本文首次提出了一种系统方法来确定通用设计优化指标,以同时权衡纳米级集成电路的功率和性能以实现特定于设计的目标。该方法结合了互连效应以及基板温度,功率和性能之间的电热耦合,以进行纳米级设计优化。说明和讨论了选择针对功率,性能和工作温度的特定设计优化指标的含义。所显示的方法论提供了更有意义的优化指标(用于功率性能折衷分析)和基础,并考虑了芯片级的热管理,包括最大允许工作温度和封装/冷却解决方案。此外,讨论了CMOS技术缩放和参数变化对所提出方法的影响。

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