Physics Letters B | |
Gaussian process error modeling for chiral effective-field-theory calculations of np↔dγ at low energies | |
S. Bacca1  B. Acharya2  | |
[1] Corresponding author.;Institut für Kernphysik and PRISMA+ Cluster of Excellence, Johannes Gutenberg-Universität Mainz, 55128 Mainz, Germany; | |
关键词: Bayesian analysis; Uncertainty quantification; Big Bang nucleosynthesis; Gaussian process; Machine learning; | |
DOI : | |
来源: DOAJ |
【 摘 要 】
We calculate the energy-dependent cross section of the np↔dγ process in chiral effective field theory and apply state-of-the-art tools for quantification of theory uncertainty. We focus on the low-energy regime, where the magnetic dipole and the electric dipole transitions cross over, including the range relevant for big-bang nucleosynthesis. Working with the leading one- and two-body electromagnetic currents, we study the order-by-order convergence of this observable in the chiral expansion of the nuclear potential. We find that the Gaussian process error model describes the observed convergence very well, allowing us to present Bayesian credible intervals for the truncation error with correlations between the cross sections at different energies taken into account. We obtain a 1σ estimate of about 0.2% for the uncertainty from the truncation of the nuclear potential. This is an important step towards calculations with statistically interpretable uncertainties for astrophysical reactions involving light nuclei.
【 授权许可】
Unknown