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The Challenges of Implementing Fine-Grained Power Gating

机译:实施细粒型电力门控的挑战

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Power consumption in digital systems, especially in portable devices, is a crucial design factor. Due to downscaling of technology, dynamic switching power is not the only relevant source of power consumption anymore as power dissipation caused by leakage currents increases. Even though power gating is a seemingly simple method for reducing the leakage power, the implications of introducing power gating to a design have to be analyzed in detail. We present an extensive analysis of the impact of fine-grained power gating on the overall power consumption. The presented results are based on the analysis of an actual implementation of power gating in the datapath of a very long instruction word (VLIW) processor. The extracted power consumption values clearly demonstrate that the overhead of power gating is, in contrary to the analysis found in previous publication, not determined by the energy required to switch a power domain on. Rather, it is determined by the energy consumption of additionally required modules. We show that, for the break-even point case, about 2/3 of the energy overhead is caused by the isolation cells, about 1/3 by the control modules, and only roughly 1% by the energy to switch a power domain on.
机译:数字系统中的功耗,特别是在便携式设备中,是一个重要的设计因素。由于技术的缩小,动态开关功率不是唯一的相关功耗来源,因为漏电流引起的功耗增加。尽管功率门控是用于减少泄漏功率的看似简单的方法,但是必须详细地分析引入功率门控到设计的含义。我们对细粒功率门控对整体功耗的影响进行了广泛的分析。所呈现的结果基于在非常长的指令字(VLIW)处理器的DataPath中的功率门控的实际实现的分析。提取的功耗值清楚地表明功率门控的开销是与先前发布中发现的分析相反,不通过切换电源域的能量来确定。相反,它由另外所需的模块的能量消耗决定。我们表明,对于断裂点壳,大约2/3的能量开销是由隔离单元引起的,控制模块约为1/3,并且通过能量仅大约1%以切换电源域。

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