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首页> 外文期刊>The Journal of Chemical Physics >A constrained approach to multiscale stochastic simulation of chemically reacting systems
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A constrained approach to multiscale stochastic simulation of chemically reacting systems

机译:化学反应系统多尺度随机模拟的一种受约束的方法

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摘要

Stochastic simulation of coupled chemical reactions is often computationally intensive, especially if a chemical system contains reactions occurring on different time scales. In this paper, we introduce a multiscale methodology suitable to address this problem, assuming that the evolution of the slow species in the system is well approximated by a Langevin process. It is based on the conditional stochastic simulation algorithm (CSSA) which samples from the conditional distribution of the suitably defined fast variables, given values for the slow variables. In the constrained multiscale algorithm (CMA) a single realization of the CSSA is then used for each value of the slow variable to approximate the effective drift and diffusion terms, in a similar manner to the constrained mean-force computations in other applications such as molecular dynamics. We then show how using the ensuing Fokker-Planck equation approximation, we can in turn approximate average switching times in stochastic chemical systems.
机译:耦合化学反应的随机模拟通常需要大量计算,尤其是当化学系统包含发生在不同时间范围内的反应时。在本文中,我们假设兰格文过程很好地估计了系统中慢物种的进化,我们引入了一种适合解决此问题的多尺度方法。它基于条件随机模拟算法(CSSA),该算法从适当定义的快速变量的条件分布中采样,给定慢变量的值。在约束多尺度算法(CMA)中,然后将CSSA的单个实现用于慢变量的每个值,以近似有效的漂移和扩散项,其方式类似于在其他应用程序(例如分子)中的约束平均力计算动力学。然后,我们说明如何使用随后的Fokker-Planck方程逼近法,进而可以估算随机化学系统中的平均切换时间。

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