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    One-loop galaxy bispectrum: Consistent theory, efficient analysis with COBRA, and implications for cosmological parameters

    Thomas Bakx1,*, Mikhail M. Ivanov2,3,†, Oliver H. E. Philcox4,5,6,7,‡, and Zvonimir Vlah8,9,10,§

    • *Contact author: t.j.m.bakx@uu.nl
    • †Contact author: ivanov99@mit.edu
    • ‡Contact author: ohep2@cantab.ac.uk
    • §Contact author: zvlah@irb.hr

    Phys. Rev. D 114, 063532 – Published 18 September, 2026

    DOI: https://doi.org/10.1103/zhcf-7cgh

    Abstract

    We present an efficient and accurate pipeline for the analysis of the redshift-space galaxy bispectrum multipoles at one-loop order in effective field theory (EFT). We provide a systematic theory derivation based on power counting, which features the first comprehensive treatment of stochastic EFT contributions—these are found to significantly improve the match to data. Our computational pipeline utilizes the Cosmology with Optimally factorized Bases of Radial Approximants (COBRA) technique that expands the linear matter power spectrum over a basis of principal components based on a singular value decomposition, allowing the cosmology dependence to be captured to subpermille accuracy with just eight templates. This transforms the problem of computing the one-loop EFT bispectrum to a simple tensor multiplication, reducing the computation time to around a second per cosmology with negligible loss of accuracy. Using these tools, we study the cosmological information in the bispectrum by analyzing PTChallenge simulations, whose gigantic volume provides the most powerful test of the one-loop EFT bispectrum so far. We find that the one-loop prediction provides an excellent match to the bispectrum data up to kmax=0.15  h Mpc−1, as evidenced by the precise recovery of the dark matter density ωcdm, Hubble constant H0, and mass fluctuation amplitude σ8 parameters, and the amplitude of equilateral primordial non-Gaussianity fNLequil. Combined with the power spectrum, the COBRA-based one-loop bispectrum monopole and quadrupole yield tighter constraints than the tree-level bispectrum monopole, with the posteriors on ωcdm, H0, and σ8 shrinking by 44%, 32%, and 25%, respectively. We also find that the monopole and quadrupole moments capture most of the cosmological information in the redshift-space bispectrum in the ΛCDM model. Our results suggest that the COBRA-based bispectrum analysis will be an important tool in the interpretation of data from ongoing redshift surveys such as the Dark Energy Spectroscopic Instrument and Euclid.

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