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Fast statistical timing analysis by probabilistic event propagation

机译:通过概率事件传播进行快速统计时序分析

摘要

[[abstract]]We propose a new statistical timing analysis algorithm, which produces arrival-time random variables for all internal signals and primary outputs for cell-based designs with all cell delays modeled as random variables. Our algorithm propagates probabilistic timing events through the circuit and obtains final probabilistic events (distributions) at all nodes. The new algorithm is deterministic and flexible in controlling run time and accuracy. However, the algorithm has exponential time complexity for circuits with reconvergent fanouts. In order to solve this problem, we further propose a fast approximate algorithm. Experiments show that this approximate algorithm speeds up the statistical timing analysis by at least an order of magnitude and produces results with small errors when compared with Monte Carlo methods.
机译:[[摘要]]我们提出了一种新的统计时序分析算法,该算法可为所有内部信号生成到达时间随机变量,并为基于信元的设计(将所有信元延迟建模为随机变量)生成主要输出。我们的算法通过电路传播概率时序事件,并在所有节点上获得最终概率事件(分布)。新算法在控制运行时间和准确性方面具有确定性和灵活性。但是,对于扇形收敛的电路,该算法具有指数时间复杂度。为了解决这个问题,我们进一步提出了一种快速近似算法。实验表明,与蒙特卡洛方法相比,这种近似算法至少可以将统计时序分析速度提高一个数量级,并且产生的结果误差很小。

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