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Examination of nucleon distribution with Bayesian imaging for isobar collisions

Nuclear Theory 2023-06-29 v3 High Energy Physics - Experiment High Energy Physics - Phenomenology Nuclear Experiment

Abstract

Relativistic collision of isobaric systems is found to be valuable in differentiating the nucleon distributions for nuclei with the same mass number. In recent contrast experiment of 4496Ru+4496Ru^{96}_{44}\text{Ru}+^{96}_{44}\text{Ru} versus 4096Zr+4096Zr^{96}_{40}\text{Zr}+^{96}_{40}\text{Zr} collisions at sNN=200 GeV\sqrt{s_\text{NN}} = 200~\text{GeV}, the ratios of multiplicity distribution, elliptic flow, triangular flow, and radial flow are precisely measured and found to be significantly different from unity, indicating the difference in the shapes of the isobar pair. In this work, we investigate the feasibility of nuclear structure reconstruction from heavy-ion collision observables. We perform Bayesian Inference with employing the Monte-Carlo Glauber model as an estimator of the mapping from nuclear structure to the final state observables and to provide the mock data for reconstruction. By varying combination of observables included in the mock data, we find it plausible to infer Woods--Saxon parameters from the observables. We also observe that single-system multiplicity distribution for the isobar system, rather than their ratio, is crucial to simultaneously determine the nuclear structure for the isobar system.

Keywords

Cite

@article{arxiv.2301.03910,
  title  = {Examination of nucleon distribution with Bayesian imaging for isobar collisions},
  author = {Yi-Lin Cheng and Shuzhe Shi and Yu-Gang Ma and Horst Stöcker and Kai Zhou},
  journal= {arXiv preprint arXiv:2301.03910},
  year   = {2023}
}

Comments

Previously entitled "How does Bayesian analysis infer the nucleon distributions in isobar collisions?"