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Robust and efficient configurational molecular sampling via Langevin dynamics

机译:通过Langevin动力学进行稳健高效的配置分子采样

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摘要

A wide variety of numerical methods are evaluated and compared for solving the stochastic differential equations encountered in molecular dynamics. The methods are based on the application of deterministic impulses, drifts, and Brownian motions in some combination. The Baker-Campbell-Hausdorff expansion is used to study sampling accuracy following recent work by the authors, which allows determination of the stepsize-dependent bias in configurational averaging. For harmonic oscillators, configurational averaging is exact for certain schemes, which may result in improved performance in the modelling of biomolecules where bond stretches play a prominent role. For general systems, an optimal method can be identified that has very low bias compared to alternatives. In simulations of the alanine dipeptide reported here (both solvated and unsolvated), higher accuracy is obtained without loss of computational efficiency, while allowing large timestep, and with no impairment of the conformational exploration rate (the effective diffusion rate observed in simulation). The optimal scheme is a uniformly better performing algorithm for molecular sampling, with overall efficiency improvements of 25 or more in practical timestep size achievable in vacuum, and with reductions in the error of configurational averages of a factor of ten or more attainable in solvated simulations at large timestep. © 2013 AIP Publishing LLC.
机译:为了解决分子动力学中遇到的随机微分方程,对各种数值方法进行了评估和比较。这些方法基于确定性脉冲,漂移和布朗运动的组合应用。 Baker-Campbell-Hausdorff展开用于研究作者最近的工作后的采样精度,这允许确定配置平均中步长相关的偏差。对于谐波振荡器,构型平均对于某些方案来说是精确的,这可能会导致在键延伸起主要作用的生物分子建模中提高性能。对于一般系统,可以确定一种最佳方法,该方法与替代方法相比具有非常低的偏差。在本文报道的丙氨酸二肽(溶剂化和未溶剂化)的模拟中,可以获得较高的准确性,而不会损失计算效率,同时允许较大的时间步长,并且不会损害构象探索速率(在模拟中观察到的有效扩散速率)。最佳方案是用于分子采样的统一性能更好的算法,在真空中可实现的实际时间步长总体效率提高25或更多,并且在溶剂化模拟中,构型平均误差可降低10倍或更多。时间步长很大。 ©2013 AIP Publishing LLC。

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    Leimkuhler, B.; Matthews, C.;

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