论文标题

用于模拟随机反应扩散过程的混合区混合框架

The blending region hybrid framework for the simulation of stochastic reaction-diffusion processes

论文作者

Yates, Christian A., George, Adam, Jordana, Armand, Smith, Cameron A., Duncan, Andrew B., Zygalakis, Konstantinos C.

论文摘要

当粒子数变得较大时,使用细粒度表示的随机反应扩散系统的模拟可能会在计算上变得过时。如果粒子数足够高,则可能忽略随机波动并使用更有效的粗粒仿真方法。然而,对于在浓度方面表现出显着空间变化的多尺度系统,在整个仿真域中,粗粒方法可能不合适。这种场景表明了一种混合范式,其中计算便宜,粗粒的模型与更昂贵但更详细的细粒度模型耦合,从而可以以合理的计算成本进行精确模拟细尺度动力学。 在本文中,为了在不同的空间尺度上进行两种反应扩散的表示,我们允许它们在“混合区域”中重叠。两种建模范式都提供了该区域中粒子密度的有效表示。从混合区域的一端到另一端,通过使用互补的“混合函数”,控制扩散的实现将从一个建模范式传递到另一个建模范式,从而扩展了每个模型对总体扩散的贡献。我们通过在四个示例反应扩散场景上证明其模拟来建立新型混合范式的可靠性。

The simulation of stochastic reaction-diffusion systems using fine-grained representations can become computationally prohibitive when particle numbers become large. If particle numbers are sufficiently high then it may be possible to ignore stochastic fluctuations and use a more efficient coarse-grained simulation approach. Nevertheless, for multiscale systems which exhibit significant spatial variation in concentration, a coarse-grained approach may not be appropriate throughout the simulation domain. Such scenarios suggest a hybrid paradigm in which a computationally cheap, coarse-grained model is coupled to a more expensive, but more detailed fine-grained model enabling the accurate simulation of the fine-scale dynamics at a reasonable computational cost. In this paper, in order to couple two representations of reaction-diffusion at distinct spatial scales, we allow them to overlap in a "blending region". Both modelling paradigms provide a valid representation of the particle density in this region. From one end of the blending region to the other, control of the implementation of diffusion is passed from one modelling paradigm to another through the use of complementary "blending functions" which scale up or down the contribution of each model to the overall diffusion. We establish the reliability of our novel hybrid paradigm by demonstrating its simulation on four exemplar reaction-diffusion scenarios.

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