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high-energy nuclear physics

CLVisc Agent for autonomous relativistic hydrodynamics studies

arXiv:2607.27822

summary

The paper presents a large language model agent that can autonomously run and analyze relativistic hydrodynamic simulations of quark‑gluon plasma in heavy‑ion collisions, including parameter scans and figure generation.

Abstract

We enable large language model (LLM) agents to autonomously perform end-to-end hydrodynamic simulations of the quark-gluon plasma evolution and calculation of final hadron spectra in relativistic heavy-ion collisions. We design a meta skill that allows an agent to explore a project's source code, craft a specialized skill, and iteratively refine it. Applying this meta skill to the (3+1)D viscous hydrodynamic code CLVisc, the agent builds a CLVisc skill encoding its operational knowledge and then independently executes full scientific workflows: designing parameter scans, running simulations, comparing ensemble results, and producing publication-ready figures. Crucially, the agent draws on literature-informed heavy-ion physics to select physically meaningful observables and interpret outcomes without explicit instruction. We demonstrate the pipeline in two scenarios: temperature-dependent shear viscosity over entropy density $η/s$, and nuclear-structure effects in O+O collisions at $\sqrt{s_{\mathrm{NN}}} = 5.36$~TeV using four \textit{ab initio} descriptions of $^{16}$O. In both, the agent plans, executes, and analyzes autonomously, devising new initial-state observables to explain final observations and extract qualitative knowledge. The meta skill is agnostic to code versions and Monte Carlo generators, promising future multi-agent systems in high-energy nuclear physics.

15 pages, 6 figures

Topics & keywords

#relativistic hydrodynamics#large language model agents#quark-gluon plasma#heavy-ion collisions#simulation automationCLViscviscous hydrodynamicsLLM meta‑skillshear viscosity η/soxygen collisionsab initio nuclear structure