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Accurate power macro-modeling techniques for complex RTL circuits

机译:复杂RTL电路的精确功率宏建模技术

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This paper presents novel techniques for the cycle-accurate power macro-modeling of complex RTL components. The proposed techniques are based on the observation that RTL components often exhibit significantly different "power behavior" for different parts of the input space, making it difficult for a single conventional macro-model to accurately estimate the power dissipation over the entire input space. We address this problem by identifying and separating the input space into regions that display "similar" power behavior. We refer to these regions as the power modes of the component. We then construct separate macro-models for each region, and construct a function that, given the input trace to the component, selects an appropriate power mode (and hence macro-model) for use in each cycle. The proposed ideas are complementary to, and improve upon, previously proposed techniques for power macro-modeling such as linear regression, table look-up, power sensitivity, etc. We present experimental results on several practical complex RTL components, and demonstrate that the proposed techniques result in significant reductions (up to 90%) in the error of RTL macro-modeling compared to a gate-level power estimator.
机译:本文提出了用于复杂RTL组件的周期精确功率宏建模的新技术。提出的技术基于以下观察结果:RTL组件对于输入空间的不同部分通常表现出明显不同的“功率行为”,这使得单个常规宏模型难以准确估计整个输入空间的功率消耗。我们通过识别输入空间并将其分成显示“相似”电源行为的区域来解决此问题。我们将这些区域称为组件的功率模式。然后,我们为每个区域构造单独的宏模型,并构造一个函数,在给定组件的输入轨迹的情况下,选择一个合适的功率模式(并因此选择宏模型)以用于每个周期。所提出的想法是对先前提出的用于功率宏建模的技术(例如线性回归,表格查找,功率灵敏度等)的补充和改进。我们提供了一些实际的复杂RTL组件的实验结果,并证明了所提出的与门级功率估计器相比,这些技术可显着降低RTL宏模型误差(最多可降低90%)。

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