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  • Letter

Data-driven analysis of dipole strength functions using artificial neural networks

W. G. Jiang1,*, T. Egert1, S. Bacca1,2, F. Bonaiti1,3,4, and P. von Neumann-Cosel5

  • *Contact author: wjiang@uni-mainz.de

Phys. Rev. C 111, L051308 – Published 30 May, 2025

DOI: https://doi.org/10.1103/PhysRevC.111.L051308

Abstract

We present a data-driven analysis of dipole strength functions across the nuclear chart, employing an artificial neural network to model nuclear dipole responses. We train the network on a dataset of experimentally measured dipole strength functions for 216 different nuclei. To assess its predictive capability, we test the trained model on an additional set of 10 new nuclei, where experimental data exist. We demonstrate that the artificial neural network not only accurately reproduces known data but also identifies potential inconsistencies in experimental datasets, indicating which results may warrant further review or possible rejection. For nuclei where experimental data are sparse or unavailable, the network confirms theoretical calculations, reinforcing its utility as a predictive tool in nuclear physics. Finally, utilizing the predicted electric dipole polarizability, we extract the value of the symmetry energy at saturation density and find it consistent with results from the literature.

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