Efficient prediction of attosecond two-colour pulses from an X-ray free-electron laser with machine learning
Abstract
X-ray free-electron lasers are sources of coherent, high-intensity X-rays with numerous applications in ultra-fast measurements and dynamic structural imaging. Due to the stochastic nature of the self-amplified spontaneous emission process and the difficulty in controlling injection of electrons, output pulses exhibit significant noise and limited temporal coherence. Standard measurement techniques used for characterizing two-coloured X-ray pulses are challenging, as they are either invasive or diagnostically expensive. In this work, we employ machine learning methods such as neural networks and decision trees to predict the central photon energies of pairs of attosecond fundamental and second harmonic pulses using parameters that are easily recorded at the high-repetition rate of a single shot. Using real experimental data, we apply a detailed feature analysis on the input parameters while optimizing the training time of the machine learning methods. Our predictive models are able to make predictions of central photon energy for one of the pulses without measuring the other pulse, thereby leveraging the use of the spectrometer without having to extend its detection window. We anticipate applications in X-ray spectroscopy using XFELs, such as in time-resolved X-ray absorption and photoemission spectroscopy, where improved measurement of input spectra will lead to better experimental outcomes.
Keywords
Cite
@article{arxiv.2311.14751,
title = {Efficient prediction of attosecond two-colour pulses from an X-ray free-electron laser with machine learning},
author = {Karim K. Alaa El-Din and Oliver G. Alexander and Leszek J. Frasinski and Florian Mintert and Zhaoheng Guo and Joseph Duris and Zhen Zhang and David B. Cesar and Paris Franz and Taran Driver and Peter Walter and James P. Cryan and Agostino Marinelli and Jon P. Marangos and Rick Mukherjee},
journal= {arXiv preprint arXiv:2311.14751},
year = {2024}
}
Comments
14 pages, 8 figures