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A Variability-Aware Robust Design Methodology for Integrated Circuits by Geometric Programming

机译:几何编程的集成电路的可变性感知鲁棒设计方法

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Process variations have continuously posed significant challenges to the performance and yield of integrated circuits (ICs). The performance modeling and robust optimization method considering process variations has become an important research task in today's IC design. Aiming at solving the problems of strong nonlinearity and high-dimensional problems in circuit design, this paper proposes a general robust optimization method for ICs by geometric programming. This method first employs regularization sparse models to model a specific performance metric as a posynomial function in terms of design parameters, in order to reduce parameter space dimensionality and to accurately capture the nonlinear relationship between performance perturbations and process variations. Based on the posynomial performance models, this method further uses an uncertainty set to represent the uncertainties of process variations, and formulates the problem of robust optimization under process variations as a general geometric programming model that can be efficiently solved. Experimental results demonstrate that, the proposed method not only enhances the accuracy and efficiency of circuit performance modeling, but also improves the performance yield significantly compared with traditional circuit design methods.
机译:过程变化对集成电路(IC)的性能和产量不断提出了重大挑战。考虑过程变化的性能建模和鲁棒优化方法已成为当今IC设计中的重要研究任务。旨在解决电路设计中强度非线性和高维问题的问题,本文提出了一种通过几何编程的IC稳健优化方法。该方法首先采用正则化稀疏模型来模拟特定的性能度量作为设计参数的姿态功能,以减少参数空间维度,并准确地捕获性能扰动和过程变化之间的非线性关系。基于Posynomial性能模型,该方法还使用不确定性集合来表示过程变化的不确定性,并在过程变化下制定作为可以有效解决的通用几何编程模型的鲁棒优化问题。实验结果表明,所提出的方法不仅提高了电路性能建模的准确性和效率,而且与传统电路设计方法相比,还提高了性能产量。

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