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Properties of and improvements to time-domain dynamic thermal analysis algorithms

机译:时域动态热分析算法的性质和改进

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Temperature has a strong influence on integrated circuit (IC) performance, power consumption, and reliability. However, accurate thermal analysis can impose high computation costs during the IC design process. We analyze the performance and accuracies of a variety of time-domain dynamic thermal analysis techniques and use our findings to propose a new analysis technique that improves performance by 38-138× relative to popular methods such as the fourth-order globally adaptive Runge-Kutta method while maintaining accuracy. More precisely, we prove that the step sizes of step doubling based globally adaptive fourth-order Runge-Kutta method and Runge-Kutta-Fehlberg methods always converge to a constant value regardless of the initial power profile, thermal profile, and error threshold during dynamic thermal analysis. Thus, these widely-used techniques are unable to adapt to the requirements of individual problems, resulting in poor performance. We also determine the effect of using a number of temperature update functions and step size adaptation methods for dynamic thermal analysis, and identify the most promising approach considered. Based on these observations, we propose FATA, a temporally-adaptive technique for fast and accurate dynamic thermal analysis.
机译:温度对集成电路(IC)的性能,功耗和可靠性有很大影响。但是,准确的热分析会在IC设计过程中带来较高的计算成本。我们分析了各种时域动态热分析技术的性能和准确性,并使用我们的发现提出了一种新的分析技术,相对于第四种方法,该技术可以将性能提高38-138°C。在保持精度的同时订购全局自适应Runge-Kutta方法。更准确地说,我们证明了基于步长加倍的全局自适应四阶Runge-Kutta方法和Runge-Kutta-Fehlberg方法的步长始终收敛为常数,而与动态过程中的初始功率曲线,热曲线和误差阈值无关热分析。因此,这些广泛使用的技术无法适应各个问题的要求,从而导致性能不佳。我们还确定了使用多种温度更新功能和步长自适应方法进行动态热分析的效果,并确定了考虑的最有前途的方法。基于这些观察,我们提出了FATA,这是一种快速,准确的动态热分析的时间自适应技术。

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