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Automatic method for identifying reaction coordinates in complex systems

机译:复杂系统中反应坐标的自动识别方法

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摘要

To interpret simulations of a complex system to determine the physical mechanism of a dynamical process, it is necessary to identify the small number of coordinates that distinguish the stable states from the transition states. We develop an automatic method for identifying these degrees of freedom from a database of candidate physical variables. In the method neural networks are used to determine the functional dependence of the probability of committing to a stable state (committor) on a set of coordinates, and a genetic algorithm selects the combination of inputs that yields the best fit. The method enables us to obtain the first set of coordinates that is demonstrably sufficient to specify the transition state of the C-7eq -> alpha(R) isomerization of the alanine dipeptide in the presence of explicit water molecules. It is revealed that the solute-solvent coupling can be described by a solvent-derived electrostatic torque around one of the main-chain bonds, and the collective, long-ranged nature of this interaction accounts for previous failures to characterize this reaction.
机译:为了解释复杂系统的模拟以确定动态过程的物理机制,有必要识别少量的坐标,以将稳定状态与过渡状态区分开。我们开发了一种自动方法,用于从候选物理变量数据库中识别这些自由度。在该方法中,神经网络用于确定在一组坐标上提交到稳定状态(提交者)的概率的函数依赖性,并且遗传算法选择产生最佳拟合的输入组合。该方法使我们能够获得足以证明在明确的水分子存在下丙氨酸二肽的C-7eq-> alpha(R)异构化的过渡态的第​​一组坐标。揭示了溶质-溶剂偶合可以通过围绕主链键之一的溶剂衍生的静电转矩来描述,并且这种相互作用的共同的,长期的性质解释了先前未能表征该反应的原因。

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