Data augmentation for disruption prediction via robust surrogate models

Katharina Rath, David Rügamer, Bernd Bischl, Udo von Toussaint, Cristina Rea, Andrew Maris, Robert Granetz, Christopher G. Albert

2022 · Journal of Plasma Physics · vol. 88 · no. 5 · Cambridge University Press (CUP) · 10.1017/S0022377822000769

Abstract

The goal of this work is to generate large statistically representative data sets to train machine learning models for disruption prediction provided by data from few existing discharges. Such a comprehensive training database is important to achieve satisfying and reliable prediction results in artificial neural network classifiers. Here, we aim for a robust augmentation of the training database for multivariate time series data using Student $t$ process regression. We apply Student $t$ process regression in a state space formulation via Bayesian filtering to tackle challenges imposed by outliers and noise in the training data set and to reduce the computational complexity. Thus, the method can also be used if the time resolution is high. We use an uncorrelated model for each dimension and impose correlations afterwards via colouring transformations. We demonstrate the efficacy of our approach on plasma diagnostics data of three different disruption classes from the DIII-D tokamak. To evaluate if the distribution of the generated data is similar to the training data, we additionally perform statistical analyses using methods from time series analysis, descriptive statistics and classic machine learning clustering algorithms.

BibTeX

@article{Rath_2022,
 title={Data augmentation for disruption prediction via robust surrogate models},
 volume={88},
 ISSN={1469-7807},
 url={http://dx.doi.org/10.1017/S0022377822000769},
 DOI={10.1017/s0022377822000769},
 number={5},
 journal={Journal of Plasma Physics},
 publisher={Cambridge University Press (CUP)},
 author={Rath, Katharina and Rügamer, David and Bischl, Bernd and von Toussaint, Udo and Rea, Cristina and Maris, Andrew and Granetz, Robert and Albert, Christopher G.},
 year={2022},
 month=oct }