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Efficient Block-Based Parameterized Timing Analysis Covering All Potentially Critical Paths

机译:涵盖所有潜在关键路径的高效基于块的参数化时序分析

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In order for the results of timing analysis to be useful, they must provide insight and guidance on how the circuit may be improved so as to fix any reported timing problems. A limitation of many recent variability-aware timing analysis techniques is that, while they report delay distributions, or verify multiple corners, they do not provide the required guidance for re-design. We propose an efficient block-based parameterized timing analysis technique that can accurately capture circuit delay at every point in the parameter space, by reporting all paths that can become critical. Using an efficient pruning algorithm, only those potentially critical paths are carried forward, while all other paths are discarded during propagation. This allows one to examine local robustness to parameters in different regions of the parameter space, not by considering differential sensitivity at a point (that would be useless in this context) but by knowledge of the paths that can become critical at nearby points in parameter space. We give a formal definition of this problem and propose a technique for solving it, which improves on the state of the art, both in terms of theoretical computational complexity and in terms of runtime on various test circuits.
机译:为了使时序分析的结果有用,他们必须提供有关如何改进电路的见识和指导,以解决任何报告的时序问题。许多最新的可变性时序分析技术的局限性在于,尽管它们报告延迟分布或验证多个角落,但它们并未提供重新设计所需的指导。我们提出了一种有效的基于块的参数化时序分析技术,该技术可以通过报告可能成为关键的所有路径来准确捕获参数空间中每个点的电路延迟。使用有效的修剪算法,仅保留那些潜在的关键路径,而在传播过程中丢弃所有其他路径。这允许人们检查参数空间不同区域对参数的局部鲁棒性,而不是通过考虑一点的灵敏度(在这种情况下将是无用的),而是通过了解在参数空间附近点可能变得至关重要的路径来进行的。 。我们给出了该问题的正式定义,并提出了一种解决该问题的技术,无论是在理论上的计算复杂度还是在各种测试电路上的运行时间方面,都对现有技术进行了改进。

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