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Statistical extraction and modeling of 3-D inductance with spatial correlation

机译:空间相关性三维电感的统计提取与建模

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In this paper, we present a novel method for inductance extraction and modeling for interconnects considering process variations. The new method is based on the spectral stochastic method where orthogonal polynomials are used to represent the statistical processes in a deterministic way. Coefficients of the orthogonal polynomials are computed for the inductances. Statistical inductance values are then found using a fast multi-dimensional Gaussian quadrature method with sparse grid. To further improve the efficiency of the proposed method, a random variable reduction scheme is used. Given the interconnect wire variation parameters, the resulting method can derive the parameterized closed form of the inductance and its variation. We show that both partial and loop inductance variations can be significant given the width and height variations. This new approach can work with any existing inductance extraction tools to produce the variational inductance or impedance models. Experimental results show that our method is orders of magnitude faster than than the Monte Carlo method for several practical interconnect structures.
机译:在本文中,我们提出了一种用于考虑过程变化的互连的电感提取和建模的新方法。新方法基于光谱随机方法,其中正交多项式用于以确定性方式表示统计过程。对电感计算正交多项式的系数。然后使用具有稀疏网格的快速多维高斯正交方法找到统计电感值。为了进一步提高所提出的方法的效率,使用随机可变降低方案。鉴于互连线变形参数,所得到的方法可以导出电感的参数化封闭形式及其变化。我们表明,占宽度和高度变化的局部和环路电感变化都可以很大。这种新方法可以使用任何现有的电感提取工具来产生变分电或阻抗模型。实验结果表明,我们的方法是几个实际互连结构的蒙特卡罗方法的数量级。

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