Present Day Cosmic Acceleration from SDSS and DESI BAO: A Call for Finer Tomography of the DESI Bright Galaxy Survey
Anna Chiara Ferri, Ruchika, Alessandro Melchiorri
astro-ph.CO
Submitted: 2026-07-08
Comments: 17 pages, 5 figures, 1 table
License: http://creativecommons.org/licenses/by/4.0/
The gist: The DESI collaboration's Data Release 2 (DR2) provides baryon acoustic oscillation (BAO) measurements from over 14 million galaxies and quasars, and a joint analysis of DESI BAO, CMB, and Type Ia
Terminology
Abstract
The DESI collaboration's Data Release 2 (DR2) provides baryon acoustic oscillation (BAO) measurements from over 14 million galaxies and quasars, and a joint analysis of DESI BAO, CMB, and Type Ia Supernovae reveals a preference for time-evolving dark energy. We quantify this preference relative to SDSS BAO and report three key results. First, DESI+Planck favors a higher w 0 = -0.41+0.21-0.22 than SDSS+Planck (w 0 = -0.71+0.19-0.18). Second, DESI+Planck prefers a deceleration parameter whose median lies on the decelerating side (q 0 = 0.10+0.21-0.23, consistent with q 0 = 0 at 1 sigma), while SDSS+Planck prefers a negative value (q 0 =-0.22+0.20-0.21) indicating accelerated expansion. Third, we argue that this discrepancy arises from the difference in the lowest effective redshift probed by each survey: z eff about 0.295 for DESI versus z eff about 0.15 for SDSS. As present-day quantities, w 0 and q 0 are sensitive to the lowest probed redshift: data near z = 0 constrain them directly, whereas higher-redshift data rely on extrapolating the dark energy parametrization (here CPL). Reaching z eff about 0.15, SDSS constrains w 0 and q 0 in a data-driven way, finding consistency with w 0 = -1 and acceleration. Limited to z eff 0.295, DESI relies more on extrapolation, driving q 0 positive and w 0 well above-1. Adding the Pantheon+ supernova sample restores low-redshift information, returning q 0 to negative values and reducing tension with CDM. We therefore propose that the apparent DESI preference for a non-accelerating present epoch in the BAO+CMB combination reflects redshift sampling rather than new physics, and suggest future DESI analyses adopt finer tomographic binning of the Bright Galaxy Survey sample to access lower mean redshifts and test this conclusion.
Sources
- The DESI Experiment Part I: Science,Targeting, and Survey Design
- The DESI Experiment Part II: Instrument Design
- Overview of the Instrumentation for the Dark Energy Spectroscopic Instrument
- Detection of the Baryon Acoustic Peak in the Large-Scale Correlation Function of SDSS Luminous Red Galaxies
- The 2dF Galaxy Redshift Survey: Power-spectrum analysis of the final dataset and cosmological implications
- DESI 2024 VI: Cosmological Constraints from the Measurements of Baryon Acoustic Oscillations
- DESI DR2 Results II: Measurements of Baryon Acoustic Oscillations and Cosmological Constraints
- DESI 2024 III: Baryon Acoustic Oscillations from Galaxies and Quasars
- DESI DR2 Results I: Baryon Acoustic Oscillations from the Lyman Alpha Forest
- DESI 2024 IV: Baryon Acoustic Oscillations from the Lyman Alpha Forest
- Planck 2018 results. VI. Cosmological parameters
- The Baryon Oscillation Spectroscopic Survey of SDSS-III
- The clustering of galaxies in the completed SDSS-III Baryon Oscillation Spectroscopic Survey: cosmological analysis of the DR12 galaxy sample
- DESI 2024: Constraints on Physics-Focused Aspects of Dark Energy using DESI DR1 BAO Data
- The SDSS-IV extended Baryon Oscillation Spectroscopic Survey: Overview and Early Data
- Exploring the Expansion History of the Universe
- The Sloan Digital Sky Survey: Technical Summary
- The Completed SDSS-IV extended Baryon Oscillation Spectroscopic Survey: Cosmological Implications from two Decades of Spectroscopic Surveys at the Apache Point observatory
- The Pantheon+ Analysis: Cosmological Constraints
- Union Through UNITY: Cosmology with 2,000 SNe Using a Unified Bayesian Framework
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