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Low-variance direct Monte Carlo simulations using importance weights

机译:使用重要性权重的低方差直接蒙特卡洛模拟

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摘要

We present an efficient approach for reducing the statistical uncertainty associated with direct Monte Carlo simulations of the Boltzmann equation. As with previous variance-reduction approaches, the resulting relative statistical uncertainty in hydrodynamic quantities (statistical uncertainty normalized by the characteristic value of quantity of interest) is small and independent of the magnitude of the deviation from equilibrium, making the simulation of arbitrarily small deviations from equilibrium possible. In contrast to previous variance-reduction methods, the method presented here is able to substantially reduce variance with very little modification to the standard DSMC algorithm. This is achieved by introducing an auxiliary equilibrium simulation which, via an importance weight formulation, uses the same particle data as the non-equilibrium (DSMC) calculation; subtracting the equilibrium from the non-equilibrium hydrodynamic fields drastically reduces the statistical uncertainty of the latter because the two fields are correlated. The resulting formulation is simple to code and provides considerable computational savings for a wide range of problems of practical interest. It is validated by comparing our results with DSMC solutions for steady and unsteady, isothermal and non-isothermal problems; in all cases very good agreement between the two methods is found.
机译:我们提出了一种有效的方法来减少与Boltzmann方程的直接蒙特卡洛模拟相关的统计不确定性。与以前的方差减少方法一样,流体动力量的相对统计不确定性(通过不确定量的特征值归一化的统计不确定性)很小,并且与平衡偏差的大小无关,从而可以模拟任意较小的偏差。可能达到平衡。与以前的减少方差的方法相比,此处介绍的方法能够在不对标准DSMC算法进行很小的修改的情况下就大大减少方差。这可以通过引入辅助平衡模拟来实现,该模拟通过重要权重公式使用与非平衡(DSMC)计算相同的粒子数据;从非平衡流体动力场中减去平衡会大大减少后者的统计不确定性,因为这两个场是相关的。所得公式易于编码,可为大量实际问题解决大量计算问题。通过将我们的结果与DSMC解决方案对稳态和非稳态,等温和非等温问题的比较来验证这一点;在所有情况下,两种方法之间都具有很好的一致性。

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