English

Wave-function-based emulation for nucleon-nucleon scattering in momentum space

Nuclear Theory 2023-06-13 v2 High Energy Physics - Phenomenology Data Analysis, Statistics and Probability

Abstract

Emulators for low-energy nuclear physics can provide fast & accurate predictions of bound-state and scattering observables for applications that require repeated calculations with different parameters, such as Bayesian uncertainty quantification. In this paper, we extend a scattering emulator based on the Kohn variational principle (KVP) to momentum space (including coupled channels) with arbitrary boundary conditions, which enable the mitigation of spurious singularities known as Kohn anomalies. We test it on a modern chiral nucleon-nucleon (NN) interaction, including emulation of the coupled channels. We provide comparisons between a Lippmann-Schwinger equation emulator and our KVP momentum-space emulator for a representative set of neutron-proton (np) scattering observables, and also introduce a quasi-spline-based approach for the KVP-based emulator. Our findings show that while there are some trade-offs between accuracy and speed, all three emulators perform well. Self-contained Jupyter notebooks that generate the results and figures in this paper are publicly available.

Keywords

Cite

@article{arxiv.2301.05093,
  title  = {Wave-function-based emulation for nucleon-nucleon scattering in momentum space},
  author = {A. J. Garcia and C. Drischler and R. J. Furnstahl and J. A. Melendez and Xilin Zhang},
  journal= {arXiv preprint arXiv:2301.05093},
  year   = {2023}
}

Comments

18 pages, 15 figures, matches published version

R2 v1 2026-06-28T08:10:22.580Z