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    Cosmic dipoles from large-scale structure surveys

    Jaiyul Yoo1,2,*, Matteo Magi1,†, and Dragan Huterer3,‡

    • 1Center for Theoretical Astrophysics and Cosmology, Department of Astrophysics, University of Zürich, Winterthurerstrasse 190, CH-8057, Zürich, Switzerland
    • 2Department of Physics, University of Zürich, Winterthurerstrasse 190, CH-8057, Zürich, Switzerland
    • 3Department of Physics and Leinweber Institute for Theoretical Physics, University of Michigan, 450 Church St, Ann Arbor, Michigan 48109, USA

    • *Contact author: jaiyul.yoo@uzh.ch
    • †Contact author: matteo.magi@uzh.ch
    • ‡Contact author: huterer@umich.edu

    Phys. Rev. D 112, 123013 – Published 4 December, 2025

    DOI: https://doi.org/10.1103/ks44-qt3b

    Abstract

    Large-scale structure surveys can be used to measure the dipole in the cosmic microwave background (CMB), in the luminosity distances inferred from type-Ia supernova observations, and in the spatial distribution of galaxies and quasars. The measurements of these cosmic dipoles appear to be mutually inconsistent, even though they are expected to indicate the common observer velocity. This observational tension may represent a significant challenge to the standard model of cosmology. Here we study in detail what contributes to the cosmic dipoles from CMB, supernova, and galaxy survey in the standard Λ cold dark matter (ΛCDM) model, though our theoretical model can be applied beyond the standard model. While measurements of the cosmic dipoles yield the relative velocities between the source samples and the observer velocity, the motion of the observer is the dominant contribution in the conformal Newtonian gauge, and the intrinsic velocities of the samples fall steeply with increasing redshift of the sources. Hence the cosmic dipoles of CMB, type-Ia supernovae, and galaxies should be aligned but can have different amplitudes. We also clarify several misconceptions that are commonly found in the literature.

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