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Control Variates for Stochastic Simulation of Chemical Reaction Networks

机译:化学反应网络随机模拟的控制变量

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Stochastic simulation is a widely used method for estimating quantities in models of chemical reaction networks where uncertainty plays a crucial role. However, reducing the statistical uncertainty of the corresponding estimators requires the generation of a large number of simulation runs, which is computationally expensive. To reduce the number of necessary runs, we propose a variance reduction technique based on control variates. We exploit constraints on the statistical moments of the stochastic process to reduce the estimators' variances. We develop an algorithm that selects appropriate control variates in an on-line fashion and demonstrate the efficiency of our approach on several case studies.
机译:随机模拟是在不确定性起关键作用的化学反应网络模型中估算量的一种广泛使用的方法。但是,减少相应估计量的统计不确定性需要生成大量的模拟运行,这在计算上是昂贵的。为了减少必要的运行次数,我们提出了一种基于控制变量的方差减少技术。我们利用随机过程的统计矩约束来减少估计量的方差。我们开发了一种以在线方式选择适当控制变量的算法,并在一些案例研究中证明了我们的方法的有效性。

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