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    Illustrating the consequences of a misuse of σ8 in cosmology

    Matteo Forconi1,*, Arianna Favale2,3,4,†, and Adrià Gómez-Valent3,4,‡

    • *Contact author: matteo.forconi@fe.infn.it
    • †Contact author: afavale@roma2.infn.it
    • ‡Contact author: agomezvalent@icc.ub.edu

    Phys. Rev. D 112, 023517 – Published 8 July, 2025

    DOI: https://doi.org/10.1103/rpf5-ldks

    Abstract

    The parameter σ8, which represents the root-mean-square (rms) mass fluctuations on a scale of R8=8h−1  Mpc (where h is the reduced Hubble parameter), is commonly used to quantify the amplitude of matter fluctuations at linear cosmological scales. However, the dependence of R8 on h complicates direct comparisons of σ8 values obtained under different assumptions about H0, since σ8 in such cases characterizes the amount of structure at different physical scales. This issue arises both when comparing σ8 values from fitting analyses of cosmological models with differing H0 posteriors and when contrasting constraints from galaxy clustering experiments that employ different priors on the Hubble parameter. As first noted by Sánchez in [Phys. Rev. D 102, 123511 (2020)], quantifying the growth tension using σ8 can introduce substantial biases and couple the growth and Hubble tensions in an intricate and uncontrolled way. To address these challenges, Sánchez proposed an alternative parameter, σ12, defined as the rms mass fluctuations at a scale of 12 Mpc, which is independent of h. Although Sánchez’s work was published five years ago and other authors have since highlighted the limitations of σ8, much of the cosmological community—including large collaborations—continues to rely on this parameter rather than adopting σ12, seemingly due only to historical considerations. In this work, we illustrate the biases introduced by the use of σ8 through some clear examples, aiming to motivate the community to transition from σ8 to σ12. We show that the bias found in models with large values of H0 is more prominent. This artificially complicates the search for a model that can efficiently resolve the Hubble tension without exacerbating the growth tension inferred from galaxy clustering measurements. We argue that the worsening of the growth tension in these models is much less pronounced than previously thought or may even be nonexistent.

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