On the True Significance of the Hubble Tension: A Bayesian Error Decomposition Accounting for Information Loss
arXiv:2509.09034 · doi:10.3390/universe11090303
Abstract
The Hubble tension, a persistent discrepancy between early and late Universe measurements of , poses a significant challenge to the standard cosmological model. In this work, we present a new Bayesian hierarchical framework designed to meticulously decompose this observed tension into its constituent parts: standard measurement errors, information loss arising from parameter-space projection, and genuine physical tension. Our approach, employing Fisher matrix analysis with MCMC-estimated loss coefficients and explicitly modeling information loss via variance inflation factors (), is particularly important in high-precision analysis where even seemingly small information losses can impact conclusions. We find that the real tension component () has a mean value of 5.94 km/s/Mpc (95\% CI: [3.32, 8.64] km/s/Mpc). Quantitatively, approximately 78\% of the observed tension variance is attributed to real tension, 13\% to measurement error, and 9\% to information loss. Despite this, our decomposition indicates that the observed discrepancy is predominantly a real physical phenomenon, with real tension contributing . Our findings strongly suggest that the Hubble tension is robust and probably points toward new physics beyond the CDM model.
This is the accepted version of the paper
References in corpus (13)
- 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
- In the Realm of the Hubble tension a Review of Solutions
- Challenges for CDM: An update
- The trouble with
- Measurements of the Hubble Constant: Tensions in Perspective
- The Megamaser Cosmology Project. XIII. Combined Hubble constant constraints
- The CosmoVerse White Paper: Addressing observational tensions in cosmology with systematics and fundamental physics
- H0 tension or T0 tension?
- The TRGB-SBF Project. III. Refining the HST Surface Brightness Fluctuation Distance Scale Calibration with JWST
- A comprehensive forecast for cosmological parameter estimation using joint observations of gravitational waves and short -ray bursts
- Testing the consistency of early and late cosmological parameters with BAO and CMB data
- Alleviating the Hubble Tension with a Local Void and Transitions of the Absolute Magnitude
- A proposal to improve the accuracy of cosmological observables and address the Hubble tension problem