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Estimation of the statistical error and the choice of parameters in the method of test particles

机译:测试粒子方法中统计误差的估计和参数的选择

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摘要

The method of test particles is considered for the solution of the linearized Boltzmann equation using two types of stochastic estimators: with respect to time and to intersections. Based on these estimators, functional algorithms for the approximation of three macroparameters of test particle flows (density, velocity, and temperature) are constructed in the whole domain. A new approach to the construction of confidence intervals determining statistical errors of the velocity and temperature estimates is proposed. Upper bounds for errors of functional algorithms approximating the macroparameters of the flow in the metric of the space of continuous functions are constructed. Based on these bounds, the optimal sample amount and the number of grid nodes are obtained to guarantee that the calculation error for each macroparameter does not exceed a given level with a given probability. The optimal values obtained here are tested numerically on the example of the classic problem of heat transfer between two parallel plates.
机译:考虑使用测试粒子的方法,使用两种随机估计量来求解线性化的Boltzmann方程:关于时间和交点。基于这些估计量,在整个域中构造了用于近似测试粒子流的三个宏观参数(密度,速度和温度)的功能算法。提出了一种构造置信区间的新方法,该区间确定速度和温度估计的统计误差。构造了函数算法的误差上限,该函数算法以连续函数空间的度量近似于流的宏参数。基于这些界限,获得最佳采样量和网格节点数,以确保每个宏参数的计算误差不会以给定的概率超过给定的水平。以两个平行板之间传热的经典问题为例,对此处获得的最佳值进行数值测试。

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    Institute of Thermal Physics, Siberian Branch of the Russian Academy of Sciences, Novosibirsk 630090, Russia;

    Institute of Numerical Mathematics and Mathematical Geophysics, Siberian Branch of the Russian Academy of Sciences, Novosibirsk 630090, Russia;

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