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Stochastic Behavioral Modeling and Analysis for Analog/Mixed-Signal Circuits

机译:模拟/混合信号电路的随机行为建模和分析

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摘要

It has become increasingly challenging to model the stochastic behavior of analog/mixed-signal (AMS) circuits under large-scale process variations. In this paper, a novel moment-matching-based method has been proposed to accurately extract the probabilistic behavioral distributions of AMS circuits. This method first utilizes Latin hypercube sampling coupling with a correlation control technique to generate a few samples (e.g., sample size is linear with number of variable parameters) and further analytically evaluate the high-order moments of the circuit behavior with high accuracy. In this way, the arbitrary probabilistic distributions of the circuit behavior can be extracted using moment-matching method. More importantly, the proposed method has been successfully applied to high-dimensional problems with linear complexity. The experiments demonstrate that the proposed method can provide up to 1666X speedup over crude Monte Carlo method for the same accuracy.
机译:在大规模工艺变化下,对模拟/混合信号(AMS)电路的随机行为进行建模变得越来越具有挑战性。本文提出了一种基于矩量匹配的新方法,可以准确地提取AMS电路的概率行为分布。该方法首先将拉丁超立方体采样与相关控制技术结合使用以生成一些样本(例如,样本大小与可变参数的数量成线性关系),然后进一步以高精度分析评估电路行为的高阶矩。这样,可以使用矩匹配法提取电路行为的任意概率分布。更重要的是,该方法已经成功地应用于具有线性复杂度的高维问题。实验表明,与相同的精度相比,所提方法可以提供比原始蒙特卡洛方法高1666倍的提速。

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