A machine learning based Bayesian optimization solution to non-linear responses in dusty plasmas

Author:

Ding ZhiyueORCID,Matthews Lorin SORCID,Hyde Truell WORCID

Abstract

Abstract Nonlinear frequency response analysis is a widely used method for determining system dynamics in the presence of nonlinearities. In dusty plasmas, the plasma–grain interaction (e.g. grain charging fluctuations) can be characterized by a single-particle non-linear response analysis, while grain–grain non-linear interactions can be determined by a multi-particle non-linear response analysis. Here a machine learning-based method to determine the equation of motion in the non-linear response analysis for dust particles in plasmas is presented. Searching the parameter space in a Bayesian manner allows an efficient optimization of the parameters needed to match simulated non-linear response curves to experimentally measured non-linear response curves.

Funder

National Science Foundation

NASA

Publisher

IOP Publishing

Subject

Artificial Intelligence,Human-Computer Interaction,Software

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Physics and applications of dusty plasmas: The Perspectives 2023;Physics of Plasmas;2023-12-01

2. 2022 Review of Data-Driven Plasma Science;IEEE Transactions on Plasma Science;2023-07

3. COMPACT—a new complex plasma facility for the ISS;Plasma Physics and Controlled Fusion;2022-11-15

4. Extracting forces from noisy dynamics in dusty plasmas;Physical Review E;2022-09-09

5. Dynamics in binary complex (dusty) plasmas;Reviews of Modern Plasma Physics;2022-08-29

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