Characterization-free behavioral power modeling

A. Bogliolo, L. Benini, G. Micheli
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引用次数: 23

Abstract

We propose a new approach to RT-level power modeling for combinational macros, that does not require simulation-based characterization. A pattern-dependent power model for a macro is analytically constructed using only structural information about its gate-level implementation. The approach has three main advantages over traditional techniques: (i) it provides models whose accuracy does not depend on input statistics, (ii) it offers a wide range of tradeoff between accuracy and complexity, and (iii) it enables the construction of pattern-dependent conservative upper bounds.
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无特征的行为权力建模
我们提出了一种针对组合宏的rt级功率建模的新方法,该方法不需要基于仿真的表征。仅使用有关其门级实现的结构信息来分析构建与模式相关的宏功率模型。与传统技术相比,该方法有三个主要优点:(i)它提供的模型的准确性不依赖于输入统计数据,(ii)它在准确性和复杂性之间提供了广泛的权衡,(iii)它能够构建依赖于模式的保守上界。
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