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A study on the effects of parameter estimation on kriging model's prediction error in stochastic simulations

机译:随机模拟中参数估计对克里格模型预测误差的影响研究

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In the application of kriging model in the field of simulation, the parameters of the model are likely to be estimated from the simulated data. This introduces parameter estimation uncertainties into the overall prediction error, and this uncertainty can be further aggravated by random noise in stochastic simulations. In this paper, we study the effects of stochastic noise on parameter estimation and the overall prediction error. A two-point tractable problem and three numerical experiments are provided to show that the random noise in stochastic simulations can increase the parameter estimation uncertainties and the overall prediction error. Among the three kriging model forms studied in this paper, the modified nugget effect model captures well the various components of uncertainty and has the best performance in terms of the overall prediction error.
机译:在克里金模型在模拟领域的应用中,模型的参数很可能是从模拟数据中估计出来的。这将参数估计的不确定性引入整体预测误差中,并且随机模拟中的随机噪声会进一步加剧这种不确定性。在本文中,我们研究了随机噪声对参数估计和总体预测误差的影响。通过两点可处理问题和三个数值实验,表明随机模拟中的随机噪声会增加参数估计的不确定性和整体预测误差。在本文研究的三种克里金模型形式中,改进的金块效应模型可以很好地捕获不确定性的各个组成部分,并且在整体预测误差方面具有最佳性能。

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