English

Joint machine learning analysis of muon spectroscopy data from different materials

Materials Science 2022-08-19 v1 Machine Learning

Abstract

Machine learning (ML) methods have proved to be a very successful tool in physical sciences, especially when applied to experimental data analysis. Artificial intelligence is particularly good at recognizing patterns in high dimensional data, where it usually outperforms humans. Here we applied a simple ML tool called principal component analysis (PCA) to study data from muon spectroscopy. The measured quantity from this experiment is an asymmetry function, which holds the information about the average intrinsic magnetic field of the sample. A change in the asymmetry function might indicate a phase transition; however, these changes can be very subtle, and existing methods of analyzing the data require knowledge about the specific physics of the material. PCA is an unsupervised ML tool, which means that no assumption about the input data is required, yet we found that it still can be successfully applied to asymmetry curves, and the indications of phase transitions can be recovered. The method was applied to a range of magnetic materials with different underlying physics. We discovered that performing PCA on all those materials simultaneously can have a positive effect on the clarity of phase transition indicators and can also improve the detection of the most important variations of asymmetry functions. For this joint PCA we introduce a simple way to track the contributions from different materials for a more meaningful analysis.

Keywords

Cite

@article{arxiv.2112.09601,
  title  = {Joint machine learning analysis of muon spectroscopy data from different materials},
  author = {T. Tula and G. Möller and J. Quintanilla and S. R. Giblin and A. D. Hillier and E. E. McCabe and S. Ramos and D. S. Barker and S. Gibson},
  journal= {arXiv preprint arXiv:2112.09601},
  year   = {2022}
}

Comments

4 pages, 1 figure, to be published in Journal of Physics: Conference Series, proceedings paper from SCES 2020 conference

R2 v1 2026-06-24T08:22:13.201Z