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在相互作用粒子系统中快速精确地推断扩散率。

Fast and precise inference on diffusivity in interacting particle systems.

机构信息

Chalmers tvärgata 3, 412 58, Gothenburg, Sweden.

出版信息

J Math Biol. 2023 Mar 29;86(5):64. doi: 10.1007/s00285-023-01902-y.

Abstract

Particle systems made up of interacting agents is a popular model used in a vast array of applications, not the least in biology where the agents can represent everything from single cells to animals in a herd. Usually, the particles are assumed to undergo some type of random movements, and a popular way to model this is by using Brownian motion. The magnitude of random motion is often quantified using mean squared displacement, which provides a simple estimate of the diffusion coefficient. However, this method often fails when data is sparse or interactions between agents frequent. In order to address this, we derive a conjugate relationship in the diffusion term for large interacting particle systems undergoing isotropic diffusion, giving us an efficient inference method. The method accurately accounts for emerging effects such as anomalous diffusion stemming from mechanical interactions. We apply our method to an agent-based model with a large number of interacting particles, and the results are contrasted with a naive mean square displacement-based approach. We find a significant improvement in performance when using the higher-order method over the naive approach. This method can be applied to any system where agents undergo Brownian motion and will lead to improved estimates of diffusion coefficients compared to existing methods.

摘要

由相互作用的粒子组成的粒子系统是一种在广泛应用中使用的流行模型,尤其是在生物学中,粒子可以代表从单个细胞到群体中的动物的任何东西。通常,粒子被假设经历某种类型的随机运动,而一种流行的建模方法是使用布朗运动。随机运动的幅度通常使用均方位移来量化,这提供了扩散系数的简单估计。然而,当数据稀疏或粒子之间的相互作用频繁时,这种方法往往会失效。为了解决这个问题,我们在经历各向同性扩散的大相互作用粒子系统的扩散项中推导出共轭关系,为我们提供了一种有效的推断方法。该方法准确地考虑了机械相互作用引起的异常扩散等新兴效应。我们将我们的方法应用于具有大量相互作用粒子的基于代理的模型,并且将结果与基于简单均方位移的方法进行对比。当使用高阶方法而不是简单方法时,我们发现性能有了显著提高。该方法可以应用于任何经历布朗运动的粒子系统,并将导致与现有方法相比,扩散系数的估计得到改善。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69ff/10060353/85953478b251/285_2023_1902_Fig1_HTML.jpg

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