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Fast high-level power estimation for control-flow intensive designs

机译:控制流量密集型设计的快速高电平功率估算

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In this paper, we present a power estimation technique for control-flow intensive designs that is tailored towards driving iterative high-level synthesis systems, where hundreds of architectural trade-offs are explored and compared. Our method is fast and relatively accurate. The algorithm utilizes the behavioral information to extract branch probabilities, and uses these in conjunction with switching activity and circuit capacitance information, to estimate the power consumption of a given architecture. We test our algorithm using a series of experiments, each geared towards measuring a different indicator. The first set of experiments measures the algorithms accuracy when compared to the actual circuit power. The second set of experiments measures the average tracking index, and tracking index fidelity for a series of architectures. This index measures how well the algorithm makes decisions when comparing the relative power consumption of two architectures contending as low-power candidates. Results indicate that our algorithm achieved an average estimation error of 11.8% and an average tracking index of 0.95 over all examples.
机译:在本文中,我们提出了一种用于控制流动密集型设计的功率估算技术,该技术针对驾驶迭代高级合成系统量身定制,其中探讨了数百个建筑权衡。我们的方法快速且相对准确。该算法利用行为信息来提取分支概率,并结合切换活动和电路电容信息,以估计给定架构的功耗。我们使用一系列实验测试我们的算法,每个实验都朝向测量不同的指示器。与实际电路功率相比,第一组实验测量算法精度。第二组实验测量了一系列架构的平均跟踪指数,以及跟踪指数保真度。该指标测量算法在比较符合低功率候选的两个架构的相对功耗时,算法如何做出决策。结果表明,我们的算法在所有示例中实现了11.8%的平均估计误差,平均跟踪指数为0.95。

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