Strongly Intensive Quantities for Rapidity Correlations of Multiplicities

Studies of the phase diagram of strongly interacting matter created in nuclear collisions are typically carried out using event-by-event fluctuations. Well-known way to disentangle statistical and dynamical fluctuations is to construct special observables named strongly intensive which are free from trivial volume fluctuations. Within the color string model behavior of the second-order strongly intensive quantity $$\\Sigma $$ is completely determined by the two-particle correlation function from a single string and the string fusion mechanism. In this paper, we analyze third-order strongly intensive observable for forward-backward rapidity correlations and test its behavior within the PYTHIA8 model.

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Publication Details

Journal
Physics of Particles and Nuclei
Published
2026-09-15
DOI
https://doi.org/10.1134/s1063779626701637
Primary Topic
High-Energy Particle Collisions Research
Type
article
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Strongly Intensive Quantities for Rapidity Correlations of Multiplicities

Evgeny Andronov
Physics of Particles and Nuclei
High-Energy Particle Collisions Research
article

Strongly Intensive Quantities for Rapidity Correlations of Multiplicities

Evgeny Andronov
article en

Abstract

Studies of the phase diagram of strongly interacting matter created in nuclear collisions are typically carried out using event-by-event fluctuations. Well-known way to disentangle statistical and dynamical fluctuations is to construct special observables named strongly intensive which are free from trivial volume fluctuations. Within the color string model behavior of the second-order strongly intensive quantity $$\Sigma $$ is completely determined by the two-particle correlation function from a single string and the string fusion mechanism. In this paper, we analyze third-order strongly intensive observable for forward-backward rapidity correlations and test its behavior within the PYTHIA8 model.

Physics of Particles and NucleiVol. 57(5)
St Petersburg University (RU)
Openalex Percentile: Top 98%
High-Energy Particle Collisions Research
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