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High level fault modeling of analog circuits through automated model generation using Chebyshev and Newton interpolating polynomials

机译:通过使用Chebyshev和Newton插值多项式自动生成模型,对模拟电路进行高级故障建模

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摘要

With the help of automated model generation (AMG), high level modeling (HLM) of analog circuits is able to provide useful speedup and acceptable accuracy compared with standard SPICE-level circuit simulation. Unfortunately, this is not the case for high level fault modeling (HLFM) and high level fault simulation (HLFS). This is still a critical issue that industry is facing in reducing analog testing cost. We present a novel algorithm using a fusion of Chebyshev and Newton interpolating polynomials (CNIP) in nonlinear state-space (ss) termed AMG-CNIP for HLFM in analog circuits. It is written in MATLAB and the hardware description language (HDL) VHDL-AMS, respectively. The properties of AMG-CNIP are investigated by modeling nonlinear transmission line circuits using transient analysis. Results show that the AMG-CNIP models can handle both linear and nonlinear fault simulations with reasonable accuracy, and simulation speedup is achieved compared to standard SPICE-level simulations.
机译:与标准的SPICE级电路仿真相比,借助自动模型生成(AMG),模拟电路的高级建模(HLM)能够提供有用的加速和可接受的精度。不幸的是,高级故障建模(HLFM)和高级故障模拟(HLFS)并非如此。在降低模拟测试成本方面,这仍然是业界面临的关键问题。我们提出了一种在非线性状态空间(ss)中使用Chebyshev和Newton插值多项式(CNIP)融合的新颖算法,称为AMG-CNIP用于模拟电路中的HLFM。它分别用MATLAB和硬件描述语言(HDL)VHDL-AMS编写。通过使用瞬态分析对非线性传输线电路建模,研究了AMG-CNIP的特性。结果表明,AMG-CNIP模型可以以合理的精度处理线性和非线性故障仿真,并且与标准SPICE级仿真相比,仿真速度得以提高。

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