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Selecting the Optimal Energy Point in Near-Threshold Computing

机译:在近阈值计算中选择最佳能量点

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Near-Threshold Computing (NTC) has recently emerged as an attractive paradigm as it allows devices to operate close to their optimal energy point (OEP). This work demonstrates, for the first time, that determining where the OEP of a processor exists is challenging because standard cells, forming the processor's netlist, unevenly profit w.r.t power and also unevenly degrade w.r.t delay when the voltage approaches the near-threshold region. To precisely explore, at design time, where OEP is, we create voltage-aware cell libraries that enable designers to seamlessly employ the standard tool flows, even they were not designed for that purpose, to perform voltage-aware timing and power analysis. Besides determining where the OEP is, we also demonstrate how providing logic synthesis tool flows with voltage-aware cell libraries results in a 35% higher performance at NTC. In addition, we investigate how the performance loss at NTC can be compensated through parallelized computing demonstrating, for the first time, that the OEP moves far from NTC as the number of cores increases. Our proposed methodology enables designers to select the maximum number of cores along with the optimal operating voltage jointly in which a specific power budget is fulfilled. Finally, we show how voltage-aware design for parallelized NTC provides [40%-50%] performance increase compared to traditional (i.e., voltage-unaware design) parallelized NTC.
机译:近阈值计算(NTC)最近被呈现为有吸引力的范例,因为它允许设备在最佳的能量点(OEP)接近。这项工作首次展示了确定处理器的OEP存在的位置是具有挑战性的,因为标准电池,形成处理器的网表,不均匀的利润W.R.T功率,并且当电压接近近阈值区域时,延迟也不均匀地降低。为了精确地探索,在设计时,在设计时,我们创建了电压感知的单元库,使设计人员能够无缝使用标准工具流,即使它们不是为此目的而设计的,以执行电气感知的定时和功率分析。除了确定OEP的位置之外,我们还演示了如何提供带电压感知单元库的逻辑合成刀具流动导致NTC的性能高出35%。此外,我们调查如何通过并行计算展示NTC的性能损失如何根据核心的数量增加,通过并行化计算展示远离NTC的OEP移动。我们所提出的方法使设计人员能够选择最大数量的核心,以及共同实现特定功率预算的最佳工作电压。最后,我们展示了与传统(即电压 - 不知设计)相比的并行化NTC的电压感知设计如何提供[40%-50%]性能增加。

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