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Transition-Tempered Metadynamics: Robust, Convergent Metadynamics via On-the-Fly Transition Barrier Estimation

机译:过渡强化的元动力学:通过动态过渡屏障估计进行鲁棒的收敛元动力学

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Well-tempered metadynamics has proven to be a practical and efficient adaptive enhanced sampling method for the computational study of biomolecular and materials systems. However, choosing its tunable parameter can be challenging and requires balancing a trade-off between fast escape from local metastable states and fast convergence of an overall free energy estimate. In this article, we present a new smoothly convergent variant of metadynamics, transition-tempered metadynamics, that removes that trade-off and is more robust to changes in its own single tunable parameter, resulting in substantial speed and accuracy improvements. The new method is specifically designed to study state-to-state transitions in which the states of greatest interest are known ahead of time, but transition mechanisms are not. The design is guided by a picture of adaptive enhanced sampling as a means to increase dynamical connectivity of a model's state space until percolation between all points of interest is reached, and it uses the degree of dynamical percolation to automatically tune the convergence rate. We apply the new method to Brownian dynamics on 48 random ID surfaces, blocked alanine dipeptide in vacuo, and aqueous myoglobin, finding that transition-tempered metadynamics substantially and reproducibly improves upon well-tempered metadynamics in terms of first barrier crossing rate, convergence rate, and robustness to the choice of tuning parameter. Moreover, the trade-off between first barrier crossing rate and convergence rate is eliminated: the new method drives escape from an initial metastable state as fast as metadynamics without tempering, regardless of tuning.
机译:脾气暴躁的元动力学已被证明是一种用于生物分子和材料系统计算研究的实用而有效的自适应增强采样方法。但是,选择其可调参数可能具有挑战性,并且需要在从局部亚稳态快速逃逸与总体自由能估算值的快速收敛之间进行权衡。在本文中,我们提出了一种新的平稳的元动力学变体,即过渡回火的元动力学,它消除了这种折衷,并且对自己的单个可调参数的更改更健壮,从而显着提高了速度和准确性。新方法专门设计用于研究状态到状态的转换,在这种状态下,最重要的状态会提前知道,但是转换机制却未知。该设计以自适应增强采样的图片为指导,这是一种增加模型状态空间的动态连通性直到达到所有关注点之间的渗透的手段,并且它使用动态渗透的程度来自动调整收敛速率。我们将这种新方法应用于48个随机ID表面上的布朗动力学,真空中封闭的丙氨酸二肽和肌红蛋白水溶液,发现在第一道屏障穿越率,会聚率,选择参数的鲁棒性。此外,消除了第一道障碍穿越率和收敛率之间的权衡:新方法使从初始亚稳态逃脱的速度与亚动力学一样快,无需调节,而无需进行调节。

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