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Symbolic Synthesis of Clock-Gating Logic for Power Optimization of Control-Oriented Synchronous Networks

机译:面向控制的同步网络功率优化的时钟门控逻辑的符号综合

摘要

Recent results have shown that clock-gating techniques are effective in reducing the total power consumption of sequential circuits. Unfortunately, such techniques assume the availability of the state transition graph of the target system, and rely on explicit algorithms whose complexity is polynomial in the number of states, that is, exponential in the number of state variables. This assumption poses serious limitations on the size of the circuits for which automatic gated-clock generation is feasible. In this paper we propose fully symbolic algorithms for the automatic extraction and synthesis of the clock-gating circuitry for large control-oriented sequential designs. Our techniques leverage the compact BDD-based representation of Boolean and pseudo-Boolean functions to extend the applicability of gated-clock architectures to designs implemented by synchronous networks. As a result, we can deal with circuits for which the explicit state transition graph is too large to be generated and/or manipulated. Moreover, symbolic manipulation techniques allow accurate probabilistic computations; in particular, they enable the use of non-equiprobable primary input distributions, a key step in the construction of models that match the behavior of real hardware devices with a high degree of fidelity. The results are encouraging, since power savings of up to 36% have been obtained on controllers containing up to 21 registers
机译:最近的结果表明,时钟门控技术可有效减少时序电路的总功耗。不幸的是,这样的技术假定目标系统的状态转换图是可用的,并且依赖于显式算法,该显式算法的复杂度是状态数的多项式,即状态变量数的指数。这种假设严重限制了自动门控时钟生成可行的电路尺寸。在本文中,我们提出了完全符号算法,用于大型面向控制的时序设计的时钟门控电路的自动提取和合成。我们的技术利用紧凑的基于BDD的布尔和伪布尔函数表示法将门控时钟架构的适用性扩展到由同步网络实现的设计。结果,我们可以处理显式状态转换图太大而无法生成和/或操纵的电路。而且,符号操纵技术可以进行准确的概率计算。特别是,它们可以使用不可装备的主要输入分布,这是构建模型的关键步骤,该模型可以高度真实地匹配真实硬件设备的行为。结果令人鼓舞,因为在包含多达21个寄存器的控制器上已节省多达36%的功率

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