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Efficient emulation of relativistic heavy ion collisions with transfer learning

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arxiv 2201.07302 v1 pith:XX4R76JR submitted 2022-01-18 nucl-th hep-ph

classification nucl-thhep-ph
keywords heavysimulationsdifferentcollidercollisioncollisionscomputationallyemulator
verification ladder T0 review T1 audit T2 compute T3 formal
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Measurements from the Large Hadron Collider (LHC) and the Relativistic Heavy Ion Collider (RHIC) can be used to study the properties of quark-gluon plasma. Systematic constraints on these properties must combine measurements from different collision systems and methodically account for experimental and theoretical uncertainties. Such studies require a vast number of costly numerical simulations. While computationally inexpensive surrogate models ("emulators") can be used to efficiently approximate the predictions of heavy ion simulations across a broad range of model parameters, training a reliable emulator remains a computationally expensive task. We use transfer learning to map the parameter dependencies of one model emulator onto another, leveraging similarities between different simulations of heavy ion collisions. By limiting the need for large numbers of simulations to only one of the emulators, this technique reduces the numerical cost of comprehensive uncertainty quantification when studying multiple collision systems and exploring different models.

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  1. A simple model to investigate jet quenching and correlated errors for centrality-dependent nuclear-modification factors in relativistic heavy-ion collisions

    nucl-th 2024-12 accept novelty 6.0 of 10

    A simple two-parameter jet energy-loss model can describe centrality-dependent jet suppression measurements, but the inferred formation time depends on the assumed path-length scaling and on how systematic errors are ...

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