论文标题
经典分子动力学中的不确定性定量
Uncertainty Quantification in Classical Molecular Dynamics
论文作者
论文摘要
现在,分子动力学模拟是一种广泛的方法,用于理解原子量表上的复杂系统。它找到了从物理和化学到工程,生活和医学科学的应用。在过去的十年中,该方法已开始从基于计算机的方法来合理化实验观察的方法,而不是为高级材料和药物发现等工业领域的许多现实世界应用产生明显可靠的预测。但是,有关该方法可重复性的关键方面并没有跟上其在科学界的吸收速度。在这里,我们对分子动力学模拟的不确定性定量进行了讨论,旨在赋予该方法具有更好的错误估计值,该方法将使该方法用于报告可行的结果。采用的方法是不确定性定量领域的标准方法,即使用集合方法,其中同时运行了足够多的复制品,可以从中提取可靠的统计信息。确实,由于分子动力学本质上是混乱的,因此使用集合方法的需求是基本的,并且无论执行模拟的持续时间如何。我们讨论了该方法,并在从材料科学到配体蛋白结合能量估计的一系列应用中进行了说明。
Molecular dynamics simulation is now a widespread approach for understanding complex systems on the atomistic scale. It finds applications from physics and chemistry to engineering, life and medical science. In the last decade, the approach has begun to advance from being a computer-based means of rationalising experimental observations, to producing apparently credible predictions for a number of real-world applications within industrial sectors such as advanced materials and drug discovery. However, key aspects concerning the reproducibility of the method have not kept pace with the speed of its uptake in the scientific community. Here, we present a discussion of uncertainty quantification for molecular dynamics simulation designed to endow the method with better error estimates that will enable the method to be used to report actionable results. The approach adopted is a standard one in the field of uncertainty quantification, namely using ensemble methods, in which a sufficiently large number of replicas are run concurrently, from which reliable statistics can be extracted. Indeed, because molecular dynamics is intrinsically chaotic, the need to use ensemble methods is fundamental and holds regardless of the duration of the simulations performed. We discuss the approach and illustrate it in a range of applications from materials science to ligand-protein binding free energy estimation.