Dynamic Mode Decomposition for data-driven analysis and reduced-order modelling of ExB plasmas: II. dynamics forecasting
Farbod Faraji, Maryam Reza, Aaron Knoll, J. Nathan Kutz

TL;DR
This paper extends the application of Optimized Dynamic Mode Decomposition (OPT-DMD) to forecast plasma dynamics in ExB simulations, demonstrating its effectiveness for short-term predictions and bounded errors in quasi-periodic systems.
Contribution
It applies and evaluates the stability-constrained OPT-DMD for time forecasting of plasma dynamics, highlighting its predictive capabilities and limitations across various test cases.
Findings
High predictiveness in non-transient plasma cases
Bounded error between ground-truth and ROM data
Effective for short-term and some long-term forecasts
Abstract
In part I of the article, we demonstrated that a variant of the Dynamic Mode Decomposition (DMD) algorithm based on variable projection optimization, called Optimized DMD (OPT-DMD), enables a robust identification of the dominant spatiotemporally coherent modes underlying the data across various test cases representing different physical parameters in an ExB simulation configuration. As the OPT-DMD can be constrained to produce stable reduced-order models (ROMs) by construction, in this paper, we extend the application of the OPT-DMD and investigate the capabilities of the linear ROM from this algorithm toward forecasting in time of the plasma dynamics in configurations representative of the radial-azimuthal and axial-azimuthal cross-sections of a Hall thruster and over a range of simulation parameters in each test case. The predictive capacity of the OPT-DMD ROM is assessed primarily…
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Taxonomy
TopicsPlasma Diagnostics and Applications · Magnetic confinement fusion research · Particle accelerators and beam dynamics
