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首页> 外文期刊>The Journal of Chemical Physics >Improved spatial direct method with gradient-based diffusion to retain full diffusive fluctuations
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Improved spatial direct method with gradient-based diffusion to retain full diffusive fluctuations

机译:改进的空间直接方法,具有基于梯度的扩散,以保留完整的扩散波动

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摘要

The spatial direct method with gradient-based diffusion is an accelerated stochastic reaction-diffusion simulation algorithm that treats diffusive transfers between neighboring subvolumes based on concentration gradients. This recent method achieved a marked improvement in simulation speed and reduction in the number of time-steps required to complete a simulation run, compared with the exact algorithm, by sampling only the net diffusion events, instead of sampling all diffusion events. Although the spatial direct method with gradient-based diffusion gives accurate means of simulation ensembles, its gradient-based diffusion strategy results in reduced fluctuations in populations of diffusive species. In this paper, we present a new improved algorithm that is able to anticipate all possible microscopic fluctuations due to diffusive transfers in the system and incorporate this information to retain the same degree of fluctuations in populations of diffusing species as the exact algorithm. The new algorithm also provides a capability to set the desired level of fluctuation per diffusing species, which facilitates adjusting the balance between the degree of exactness in simulation results and the simulation speed. We present numerical results that illustrate the recovery of fluctuations together with the accuracy and efficiency of the new algorithm.
机译:基于梯度的扩散的空间直接方法是一种加速的随机反应-扩散模拟算法,该算法基于浓度梯度处理相邻子体积之间的扩散转移。与精确算法相比,通过仅对净扩散事件进行采样,而不是对所有扩散事件进行采样,与精确算法相比,该最新方法在仿真速度和完成仿真运行所需的时间步数方面有了显着提高。尽管基于梯度的扩散的空间直接方法提供了精确的模拟合奏方法,但基于梯度的扩散策略却可以减少扩散物种种群的波动。在本文中,我们提出了一种新的改进算法,该算法能够预测由于系统中的扩散转移而引起的所有可能的微观波动,并结合此信息来保留与精确算法相同程度的扩散物种种群波动。新算法还提供了设置每个扩散种类所需的波动水平的功能,这有助于调整仿真结果的精确度和仿真速度之间的平衡。我们提供的数值结果说明了波动的恢复以及新算法的准确性和效率。

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