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Article Dans Une Revue Phys.Scripta Année : 2018

Predictive power of theoretical modelling of the nuclear mean field: examples of improving predictive capacities

I. Dedes
  • Fonction : Auteur

Résumé

We examine the effects of the parametric correlations on the predictive capacities of the theoretical modelling keeping in mind the nuclear structure applications. The main purpose of this work is to illustrate the method of establishing the presence and determining the form of parametric correlations within a model as well as an algorithm of elimination by substitution (see text) of parametric correlations. We examine the effects of the elimination of the parametric correlations on the stabilisation of the model predictions further and further away from the fitting zone. It follows that the choice of the physics case and the selection of the associated model are of secondary importance in this case. Under these circumstances we give priority to the relative simplicity of the underlying mathematical algorithm, provided the model is realistic. Following such criteria, we focus specifically on an important but relatively simple case of doubly magic spherical nuclei. To profit from the algorithmic simplicity we chose working with the phenomenological spherically symmetric Woods–Saxon mean-field. We employ two variants of the underlying Hamiltonian, the traditional one involving both the central and the spin orbit potential in the Woods–Saxon form and the more advanced version with the self-consistent density-dependent spin–orbit interaction. We compare the effects of eliminating of various types of correlations and discuss the improvement of the quality of predictions (‘predictive power’) under realistic parameter adjustment conditions.
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Dates et versions

hal-01763462 , version 1 (11-04-2018)

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Citer

I. Dedes, J. Dudek. Predictive power of theoretical modelling of the nuclear mean field: examples of improving predictive capacities. Phys.Scripta, 2018, 93 (4), pp.044003. ⟨10.1088/1402-4896/aab085⟩. ⟨hal-01763462⟩
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