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Deep learning: Extrapolation tool for ab initio nuclear theory

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arxiv 1810.04009 v4 pith:WLGD7OES submitted 2018-10-06 nucl-th cs.LG

classification nucl-thcs.LG
keywords extrapolationbasisresultsinitioncsmspaceapproachesfinite
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abstract

Ab initio approaches in nuclear theory, such as the no-core shell model (NCSM), have been developed for approximately solving finite nuclei with realistic strong interactions. The NCSM and other approaches require an extrapolation of the results obtained in a finite basis space to the infinite basis space limit and assessment of the uncertainty of those extrapolations. Each observable requires a separate extrapolation and most observables have no proven extrapolation method. We propose a feed-forward artificial neural network (ANN) method as an extrapolation tool to obtain the ground state energy and the ground state point-proton root-mean-square (rms) radius along with their extrapolation uncertainties. The designed ANNs are sufficient to produce results for these two very different observables in $^6$Li from the ab initio NCSM results in small basis spaces that satisfy the following theoretical physics condition: independence of basis space parameters in the limit of extremely large matrices. Comparisons of the ANN results with other extrapolation methods are also provided.

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Cited by 2 Pith papers

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    nucl-th 2025-02 conditional novelty 6.0 of 10

    A density-tail repair method yields converged matter and charge radii for 4,6,8He and 6,7,8Li from Jacobi no-core shell model calculations with chiral forces.

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