Partial correlation analysis method in ultra-relativistic heavy-ion collisions
arXiv:1706.02862 · doi:10.1103/PhysRevC.96.054903
Abstract
We argue that statistical data analysis of two-particle longitudinal correlations in ultra-relativistic heavy-ion collisions may be efficiently carried out with the technique of partial covariance. In this method, the spurious event-by-event fluctuations due to imprecise centrality determination are eliminated via projecting out the component of the covariance influenced by the centrality fluctuations. We bring up the relationship of the partial covariance to the conditional covariance. Importantly, in the superposition approach, where hadrons are produced independently from a collection of sources, the framework allows us to impose centrality constraints on the number of sources rather than hadrons, that way unfolding of the trivial fluctuations from statistical hadronization and focusing better on the initial-state physics. We show, using simulated data from hydrodynamics followed with statistical hadronization, that the technique is practical and very simple to use, giving insight into the correlations generated in the initial stage. We also discuss the issues related to separation of the short- and long-range components of the correlation functions, and show that in our example the short-range component from the resonance decays is largely reduced by considering pions of the same sign. We demonstrate the method explicitly on the cases where centrality is determined with a single central control bin, or with two peripheral control bins.
13 pages, 6 figures, Mistakes in Eqs. (10-12) corrected
References in corpus (22)
- GLISSANDO: GLauber Initial-State Simulation AND mOre
- Therminator: Thermal heavy-Ion generator
- Directed flow in ultrarelativistic heavy-ion collisions
- Strongly Intensive Quantities
- Fluctuating initial conditions in heavy-ion collisions from the Glauber approach
- Growth of Long Range Forward-Backward Multiplicity Correlations with Centrality in Au+Au Collisions at = 200 GeV
- Long Range Forward-Backward Correlations and the Color Glass Condensate
- Long-range azimuthal correlations in proton-proton and proton-nucleus collisions from the incoherent scattering of partons
- Principal component analysis of event-by-event fluctuations
- More efficient formulas for efficiency correction of cumulants and effect of using averaged efficiency
- Forward-Backward Multiplicity Correlations in sqrt(s_NN) = 200 GeV Gold-Gold Collisions
- Longitudinal fluctuations of the fireball density in heavy-ion collisions
- String Percolation and the Glasma
- Insight into particle production mechanisms via angular correlations of identified particles in pp collisions at TeV
- Forward-backward multiplicity correlations in the wounded nucleon model
- Forward-backward correlations and charged-particle azimuthal distributions in pp interactions using the ATLAS detector
- Forward-Backward Charge Fluctuations at RHIC Energies
- Forward-backward rapidity correlations in a two-step scenario
- Boltzmann-Langevin Approach to Pre-equilibrium Correlations in Nuclear Collisions
- Statistical moments in superposition models and strongly intensive measures
- Nucleus-nucleus cross-sections and long-range correlations with a local supercritical pomeron
- Forward-backward multiplicity correlations at the LHC from independent sources
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- Higher order cumulants of transverse momentum and harmonic flow in relativistic heavy ion collisions
- Bayesian approach to long-range correlations and multiplicity fluctuations in nucleus-nucleus collisions
- Isolating dynamical net-charge fluctuations
- Forward-backward multiplicity fluctuations in ultra-relativistic nuclear collisions with wounded quarks and fluctuating strings
- Turning up and down strong magnetic fields in relativistic nuclear collisions
- Forward-backward correlations with the quantity in the wounded constituent framework at LHC energies
- Accessing proton number fluctuations in limited regions of phase space