A local Monte Carlo framework for coherent QCD parton energy loss
Korinna Christine Zapp, Johanna Stachel, Urs Achim Wiedemann

TL;DR
This paper introduces a local Monte Carlo framework for simulating medium-induced gluon radiation in heavy ion collisions, accurately incorporating quantum interference effects and validating against analytical results.
Contribution
It develops a novel MC algorithm that implements quantum interference effects in a local probabilistic manner, improving upon existing models for jet quenching simulations.
Findings
The MC algorithm correctly interpolates between coherent and incoherent gluon production limits.
It quantitatively reproduces medium-induced gluon energy distribution and parton energy loss.
The algorithm accurately models transverse momentum broadening as per BDMPS-Z formalism.
Abstract
Monte Carlo (MC) simulations are the standard tool for describing jet-like multi-particle final states. To apply them to the simulation of medium-modified jets in heavy ion collisions, a probabilistic implementation of medium-induced quantum interference effects is needed. Here, we analyze in detail how the quantum interference effects included in the BDMPS-Z formalism of medium-induced gluon radiation can be implemented in a quantitatively controlled, local probabilistic parton cascade. The resulting MC algorithm is formulated in terms of elastic and inelastic mean free paths, and it is by construction insensitive to the IR and UV divergences of the total elastic and inelastic cross sections that serve as its basic building blocks in the incoherent limit. Interference effects are implemented by reweighting gluon production histories as a function of the number of scattering centers…
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