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Mesoscopic-microscopic spatial stochastic simulation with automatic system partitioning

delete2017-12-15
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Stefan Hellander *
A
Andreas Hellander
L
Linda Petzold
DOI:10.1063/1.5002773delete
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摘要

摘要

En 中文
The reaction-diffusion master equation (RDME) is a model that allows for efficient on-lattice simulation of spatially resolved stochastic chemical kinetics. Compared to off-lattice hard-sphere simulations with Brownian dynamics or Green's function reaction dynamics, the RDME can be orders of magnitude faster if the lattice spacing can be chosen coarse enough. However, strongly diffusion-controlled reactions mandate a very fine mesh resolution for acceptable accuracy. It is common that reactions in the same model differ in their degree of diffusion control and therefore require different degrees of mesh resolution. This renders mesoscopic simulation inefficient for systems with multiscale properties. Mesoscopic-microscopic hybrid methods address this problem by resolving the most challenging reactions with a microscale, off-lattice simulation. However, all methods to date require manual partitioning of a system, effectively limiting their usefulness as black-box simulation codes. In this paper, we propose a hybrid simulation algorithm with automatic system partitioning based on indirect a priori error estimates. We demonstrate the accuracy and efficiency of the method on models of diffusion-controlled networks in 3D. Published by AIP Publishing.
Keyword:
REACTION-DIFFUSION PROCESSES
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期刊

Journal of Chemical Physics 封面图
Journal of Chemical Physics
IF:
3.1
论文数:
7.2W
被引数:
23.2W

机构

U
uppsala university
学者数:
3.7W
论文数: 3.4W
被引数: 47
University of California System 封面图
University of California System
学者数:
37.6W
论文数: 33.8W
被引数: 6.6K
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