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End-to-End Industrial Study of Retiming

机译:重定时的端到端工业研究

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Sequential circuits are combinational circuits that are separated by registers. Retiming is considered as the most promising technique for optimizing sequential circuits, that involves moving the edge-triggered registers across the combinational logic without changing the functionality. Despite significant efforts spent on sequential optimization since 1980's, there are few works? discussed its performance in an end-to-end design flow. The retiming algorithms were mostly evaluated at the logic level. However, it turns out that the retiming results at logic level could be significantly different than evaluating the physical level. This paper provides the findings of how retiming algorithms perform in an end-to-end industrial design flow, with seven industry designs taken from a recent 14nm microprocessor. Experiments are conducted with several complete industrial design flows. The evaluations are made at the end of the physical design flow. The experimental results show that the performance (design quality) of the retiming algorithms vary on the designs. Based these experimental results, we discover a feature that describes the retiming potentials of sequential designs. This model successfully forecast whether the given industrial designs could be significantly improved by retiming in an end-to-end design flow, regarding timing, area, and power.
机译:顺序电路是由寄存器分开的组合电路。重时序被认为是优化时序电路的最有前途的技术,它涉及在组合逻辑上移动边沿触发的寄存器而不改变功能。尽管自1980年代以来在顺序优化上花费了大量精力,但很少有作品吗?在端到端设计流程中讨论了它的性能。重定时算法主要在逻辑级别进行评估。但是,事实证明,逻辑级别的重定时结果可能与评估物理级别大不相同。本文提供了重新定时算法在端到端工业设计流程中如何执行的发现,其中七个工业设计取材于最近的14nm微处理器。实验是用几种完整的工业设计流程进行的。评估在物理设计流程的最后进行。实验结果表明,重定时算法的性能(设计质量)在设计上有所不同。基于这些实验结果,我们发现了一种描述顺序设计的重定时潜力的功能。该模型成功地预测了有关时序,面积和功耗的端到端设计流程中是否可以通过重新定时端到端的设计来显着改善给定的工业设计。

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