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通过计算机模拟精确估计扩散系数及其不确定性

Accurate Estimation of Diffusion Coefficients and their Uncertainties from Computer Simulation.

作者信息

McCluskey Andrew R, Coles Samuel W, Morgan Benjamin J

机构信息

Centre for Computational Chemistry, School of Chemistry, University of Bristol, Cantock's Close, Bristol BS8 1TS, U.K.

European Spallation Source ERIC, Data Management and Software Centre, Asmussens Allé 305, DK-2800 Kongens Lyngby, Denmark.

出版信息

J Chem Theory Comput. 2025 Jan 14;21(1):79-87. doi: 10.1021/acs.jctc.4c01249. Epub 2024 Dec 30.

Abstract

Self-diffusion coefficients, *, are routinely estimated from molecular dynamics simulations by fitting a linear model to the observed mean squared displacements (MSDs) of mobile species. MSDs derived from simulations exhibit statistical noise that causes uncertainty in the resulting estimate of *. An optimal scheme for estimating * minimizes this uncertainty, i.e., it will have high statistical efficiency, and also gives an accurate estimate of the uncertainty itself. We present a scheme for estimating * from a single simulation trajectory with a high statistical efficiency and accurately estimating the uncertainty in the predicted value. The statistical distribution of MSDs observable from a given simulation is modeled as a multivariate normal distribution using an analytical covariance matrix for an equivalent system of freely diffusing particles, which we parametrize from the available simulation data. We use Bayesian regression to sample the distribution of linear models that are compatible with this multivariate normal distribution to obtain a statistically efficient estimate of * and an accurate estimate of the associated statistical uncertainty.

摘要

自扩散系数通常通过分子动力学模拟来估计,方法是将线性模型拟合到可移动物种观察到的均方位移(MSD)上。从模拟中得出的MSD表现出统计噪声,这会导致的最终估计值存在不确定性。估计的最优方案可将这种不确定性降至最低,即它将具有高统计效率,并且还能准确估计不确定性本身。我们提出了一种从单个模拟轨迹估计的方案,该方案具有高统计效率,并能准确估计预测值中的不确定性。使用自由扩散粒子等效系统的解析协方差矩阵,将从给定模拟中可观察到的MSD的统计分布建模为多元正态分布,我们根据可用的模拟数据对其进行参数化。我们使用贝叶斯回归对与该多元正态分布兼容的线性模型分布进行采样,以获得*的统计有效估计值和相关统计不确定性的准确估计值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d673/11736684/4a9db8e1fa51/ct4c01249_0001.jpg

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