A measurement of H 0 from DESI DR1 using energy densities
astro-ph.CO
Submitted: 2025-11-28
Updated: 2026-09-02
Comments: 26 pages, 12 figures, 9 tables. Chains and data to reproduce the figures available at https://zenodo.org/records/17686137. Updated to match accepted version
Code: https://github.com/drew2799/fbCAMB
License: http://creativecommons.org/licenses/by/4.0/
The gist: We present a new measurement of the Hubble constant, independent of standard rulers and robust to pre-recombination modifications such as Early Dark Energy (EDE), obtained by calibrating the total
Terminology
Abstract
We present a new measurement of the Hubble constant, independent of standard rulers and robust to pre-recombination modifications such as Early Dark Energy (EDE), obtained by calibrating the total energy density of the Universe. We start using the present-day photon density as an anchor, and use the baryon-to-photon ratio from Big Bang Nucleosynthesis based measurements and the baryon-to-matter ratio from the baryons' imprint on galaxy clustering to translate to a physical matter density at present day. We then compare this to measurements of the ratio of the matter density to the critical density (Ω m), calculated using the relative positions of the baryon acoustic oscillations, to measure the critical density of the universe and hence H 0. The important measurements of the evolution of the energy density all happen at low redshift, so we consider this a low-redshift measurement. We validate our method both on a suite of N-body mocks and on noiseless theory vectors generated across a wide range of Hubble parameters in both Λ CDM and EDE cosmologies. Using DESI DR1 data combined with the angular CMB acoustic scale and the latest BBN constraints, we find H 0 = 69.0 plus or minus 2.5 km s-1 Mpc-1, consistent with existing early and late-time determinations of the Hubble constant. We consider the impact of non-standard dark energy evolution on our measurement. Future data, including that from further iterations of DESI and from Euclid, will add to these results providing a powerful test of the Hubble tension.
Sources
- DESI DR2 Results II: Measurements of Baryon Acoustic Oscillations and Cosmological Constraints
- A Lockdown Perspective on the Hubble Tension (with comments from the SH0ES team)
- Planck 2018 results. VI. Cosmological parameters
- DESI 2024 VI: Cosmological Constraints from the Measurements of Baryon Acoustic Oscillations
- DESI 2024 VII: Cosmological Constraints from the Full-Shape Modeling of Clustering Measurements
- A Comprehensive Measurement of the Local Value of the Hubble Constant with 1 km/s/Mpc Uncertainty from the Hubble Space Telescope and the SH0ES Team
- DESI 2024 III: Baryon Acoustic Oscillations from Galaxies and Quasars
- In the Realm of the Hubble tension $-$ a Review of Solutions
- Status Report on the Chicago-Carnegie Hubble Program (CCHP): Measurement of the Hubble Constant Using the Hubble and James Webb Space Telescopes
- JWST Validates HST Distance Measurements: Selection of Supernova Subsample Explains Differences in JWST Estimates of Local H0
- TDCOSMO IV: Hierarchical time-delay cosmography -- joint inference of the Hubble constant and galaxy density profiles
- A gravitational-wave standard siren measurement of the Hubble constant
- A Hubble constant measurement from superluminal motion of the jet in GW170817
- The late afterglow of GW170817/GRB170817A: a large viewing angle and the shift of the Hubble constant to a value more consistent with the local measurements
- A standard siren measurement of the Hubble constant using GW170817 and the latest observations of the electromagnetic counterpart afterglow
- The Hubble Hunter's Guide
- Resolving the Hubble Tension with New Early Dark Energy
- A larger value for $H_0$ by an evolving gravitational constant
- DESI and the Hubble tension in light of modified recombination
- Modified recombination and the Hubble tension
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