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arXiv · 2211.17136

Predicting Beta Decay Energy with Machine Learning

Abstract

$Q_β$ represents one of the most important factors characterizing unstable nuclei, as it can lead to a better understanding of nuclei behavior and the origin of heavy atoms. Recently, machine learning methods have been shown to be a powerful tool to increase accuracy in the prediction of diverse atomic properties such as energies, atomic charges, volumes, among others. Nonetheless, these methods are often used as a black box not allowing unraveling insights into the phenomena under analysis. Here, the state-of-the-art precision of the $β$-decay energy on experimental data is outperformed by means of an ensemble of machine-learning models. The explainability tools implemented to eliminate the black box concern allowed to identify uncertainty and atomic number as the most relevant characteristics to predict $Q_β$ energies. Furthermore, physics-informed feature addition improved models' robustness and raised vital characteristics of theoretical models of the nuclear structure.

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BibTeXRIS

Jose M. Munoz, Serkan Akkoyun, Zayda P. Reyes, Leonardo A. Pachon. 2022-11-30. Predicting Beta Decay Energy with Machine Learning. https://doi.org/10.1103/physrevc.107.034308

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