SeSCG: Selective sequential clock gating for ultra-low-power multimedia mobile processor design

Li Li, Wei Wang, K. Choi, Seongmo Park, Moo-Kyoung Chung
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引用次数: 13

Abstract

For ultra-low-power multimedia mobile processor (MMP) design, clock-power reduction is critical because the largest portion of the total power (more than 60% in the processor designs used in this paper) is consumed in the sequential logic. Currently, for the clock-power reduction, traditional combinational clock gating scheme has been used in industry and recently, sequential clock gating method is introduced by a few advanced CAD vendors. In order to maximize the power reduction of the MMP design, we propose a novel selective sequential clock gating (SeSCG) technique in this paper. The SeSCG scheme can choose optimal sequential clock gating style selectively for ultra-low-power design based on the proposed toggle rate analysis at RT level. We have tested the proposed technique on two real industrial MMP designs using 65 nanometer technology. The experimental results show that the conventional sequential clock gating scheme even increases average 4.77% of total power while the proposed SeSCG technique decreases average 23.71% total power with reasonably very small area overhead (no more than 0.63%) when we use real industrial testbenches for the two industrial MMP designs.
SeSCG:用于超低功耗多媒体移动处理器设计的选择性时序时钟门控
对于超低功耗多媒体移动处理器(MMP)设计,时钟功耗的降低是至关重要的,因为总功耗的最大部分(在本文使用的处理器设计中超过60%)消耗在顺序逻辑上。目前,为了降低时钟功耗,工业上主要采用传统的组合时钟选通方案,最近一些先进的CAD厂商又引入了顺序时钟选通方法。为了最大限度地降低MMP设计的功耗,我们提出了一种新的选择性时序时钟门控(SeSCG)技术。SeSCG方案可以基于RT电平的切换率分析,选择性地选择最优的顺序时钟门控方式,实现超低功耗设计。我们已经在两个实际的工业MMP设计中使用65纳米技术测试了所提出的技术。实验结果表明,在两种工业MMP设计的实际工业试验台上,传统的顺序时钟门控方案平均提高了4.77%的总功率,而SeSCG技术平均降低了23.71%的总功率,并且面积开销很小(不超过0.63%)。
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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