Accurate and efficient numerical methods for molecular dynamics and data science using adaptive thermostats

发布时间:2024-07-29浏览次数:64

题目Accurate and efficient numerical methods for molecular dynamics and data science using adaptive thermostats


报告人:Xiaocheng Shang (University of Birmingham)


摘要:I will discuss the design of state-of-the-art numerical methods for sampling probability measures in high dimension where the underlying model is only approximately identified with a gradient system. Extended stochastic dynamical methods, known as adaptive thermostats that automatically correct thermodynamic averages using a negative feedback loop, are discussed which have application to molecular dynamics and Bayesian sampling techniques arising in emerging machine learning applications. I will also discuss the characteristics of different algorithms, including the convergence of averages and the accuracy of numerical discretizations.


时间:08/03Saturday, 15:00-16:00

地点:Mingde Building B201-1


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