Neural Unfolding of the Chiral Magnetic Effect in Heavy-Ion Collisions
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Abstract
The search for the chiral magnetic effect (CME) in relativistic heavy-ion collisions (HICs) is challenged by significant background contamination. We present a novel deep learning approach based on a U-Net architecture to time-reversely unfold the dynamics of CME-related charge separation, enabling the reconstruction of the physics signal across the entire evolution of HICs. Trained on the events simulated by a multi-phase transport model with different cases of CME settings, our model learns to recover the charge separation based on final-state transverse momentum distributions at either the quark-gloun plasma freeze-out or hadronic freeze-out. This devises a methodological tool for the study of CME and underscores the promise of deep learning approaches in retrieving physics signals in HICs.
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Cite this article:
Shuang Guo, Lingxiao Wang, Kai Zhou, Guo-Liang Ma. Neural Unfolding of the Chiral Magnetic Effect in Heavy-Ion Collisions[J].
Chin. Phys. Lett..
DOI: 10.1088/0256-307X/42/11/110101
Shuang Guo, Lingxiao Wang, Kai Zhou, Guo-Liang Ma. Neural Unfolding of the Chiral Magnetic Effect in Heavy-Ion Collisions[J]. Chin. Phys. Lett.. DOI: 10.1088/0256-307X/42/11/110101
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Shuang Guo, Lingxiao Wang, Kai Zhou, Guo-Liang Ma. Neural Unfolding of the Chiral Magnetic Effect in Heavy-Ion Collisions[J]. Chin. Phys. Lett.. DOI: 10.1088/0256-307X/42/11/110101
Shuang Guo, Lingxiao Wang, Kai Zhou, Guo-Liang Ma. Neural Unfolding of the Chiral Magnetic Effect in Heavy-Ion Collisions[J]. Chin. Phys. Lett.. DOI: 10.1088/0256-307X/42/11/110101
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