English

Data-Driven Refinement of an Analytical Holographic Model for the QCD Phase Transition

High Energy Physics - Phenomenology 2025-12-02 v1

Abstract

Using (2+1)-flavor lattice QCD data, we refine the parameters of an analytical holographic model via gradient descent optimization to precisely locate the critical endpoint in the TμT-\mu plane. Specifically, we calibrate the model using input data for the speed of sound at μB=0\mu_B = 0, the second-order baryon number susceptibility χ2B\chi^B_2, and the baryon number density at μB/T=1\mu_B/T = 1. With these parameters fixed, we calculate pressure and energy density versus temperature at small chemical potentials and compare the results with lattice QCD data using Taylor expansion techniques. This comparison validates the robustness of our model upon extension to finite chemical potentials, as the results show broad consistency with lattice QCD data in this regime. Finally, we employ the calibrated model to determine the coordinates of the critical endpoint in the TμBT-\mu_B plane, finding it located at (μB=0.678GeV,T=0.110GeV)(\mu_B = 0.678 \, \rm{GeV}, T = 0.110 \, \rm{GeV})

Keywords

Cite

@article{arxiv.2512.01836,
  title  = {Data-Driven Refinement of an Analytical Holographic Model for the QCD Phase Transition},
  author = {Xun Chen and Floriana Giannuzzi and Stefano Nicotri},
  journal= {arXiv preprint arXiv:2512.01836},
  year   = {2025}
}
R2 v1 2026-07-01T08:04:02.180Z