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Extracting Kinetic and Stationary Distribution Information from Short MD Trajectories via a Collection of Surrogate Diffusion Models

机译:通过一组替代扩散模型从短MD轨迹中提取动力学和平稳分布信息

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Low-dimensional stochastic models can summarize dynamical information and make long time predictions associated with observables of complex atomistic systems.Maximum likelihood based techniques for estimating low-dimensional surrogate diffusion models from relatively short time series are presented.It is found that a heterogeneous population of slowly evolving conformational degrees of freedom modulates the dynamics.This underlying heterogeneity results in a collection of estimated low-dimensional diffusion models.Numerical techniques for exploiting this finding to approximate skewed histograms associated with the simulation are presented.In addition,statistical tests are used to assess the validity of the models and determine physically relevant sampling information,e.g.the maximum sampling frequency at which one can discretely sample from an atomistic time series and have a surrogate diffusion model pass goodness-of-fit tests.The information extracted from such analyses can possibly be used to assist umbrella sampling computations as well as help in approximating effective diffusion coefficients.The techniques are demonstrated on simulations of adenylate kinase.
机译:低维随机模型可以总结动力学信息并做出与复杂原子系统可观观测值相关的长时间预测,提出了基于最大似然性的相对短时间序列低维替代物扩散模型的估计方法,发现了异质种群缓慢发展的构象自由度调节动力学。这种潜在的异质性导致了估计的低维扩散模型的集合。提出了利用这一发现来近似与模拟相关的偏斜直方图的数值技术。此外,还使用了统计检验评估模型的有效性并确定与物理相关的采样信息,例如可以从原子时间序列中离散采样并具有替代扩散模型的最大采样频率通过拟合优度检验。从此类分析中提取的信息可以可能可用于伞状采样的计算以及有效扩散系数的近似计算。该技术在腺苷酸激酶的模拟中得到了证明。

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