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Mixed-technology system-level simulation

机译:混合技术系统级仿真

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摘要

This paper describes a computationally efficient method to simulate mixed-domain systems under the requirements of a system-level framework. The approach is the combined use of Modified Nodal Analysis (MNA) for the representation of a mixed-technology device and piecewise linear (PWL) techniques to overcome the costly numerical evaluation found in conventional circuit or device simulators. This approach makes the simulation computationally fast, as well as more stable when compared with traditional circuit simulation. The PWL solver, based in the frequency domain, is more robust to inconsistencies in initial conditions and impulse changes when compared to integration based solvers in the time domain. The advantage of this method is that the same solver enables the integration of multi-domain devices (e.g., electrical, optical, and mechanical) in the same simulation framework. The use of this technique for the simulation of multi-domain systems has proven to give better performance in simulation time when compared to traditional circuit simulators with a relatively small decrease in the level of accuracy. Comparisons with traditional solvers, such as SPICE, show two to three orders of magnitude speedup with less than 5% relative error. The ability to adjust the level of accuracy, either by varying the sampling rate or the number of regions of operation in the models, allows for both computationally fast and in-depth analysis in the same CAD framework.
机译:本文介绍了一种在系统级框架要求下模拟混合域系统的高效计算方法。该方法是将混合节点表示的改进节点分析(MNA)与分段线性(PWL)技术结合使用,以克服常规电路或设备模拟器中昂贵的数值评估方法。与传统的电路仿真相比,这种方法使仿真的计算速度更快,并且更加稳定。与时域中基于积分的求解器相比,基于频域的PWL求解器对初始条件的不一致性和冲量变化的鲁棒性更高。该方法的优点在于,同一求解器可以在同一仿真框架中集成多域设备(例如,电,光和机械)。与传统的电路仿真器相比,使用这种技术进行多域系统的仿真已证明可以在仿真时间上提供更好的性能,而精度水平却相对较低。与传统求解器(例如SPICE)的比较显示出2到3个数量级的加速比,相对误差小于5%。通过更改模型中的采样率或操作区域数量来调整准确性级别的能力,可以在同一CAD框架中进行计算上的快速分析和深度分析。

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