Active Physics & Astronomy Mathematics & Statistics

Bayesian inference of the Hubble constant

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The universe's expansion rate, measured by the Hubble constant, is now the subject of a bitter dispute between different measurement methods, each claiming precision but disagreeing with the others. This matters because the Hubble constant is a fundamental number in cosmology—it tells us the universe's age, size, and ultimate fate. The current "Hubble tension" means something is wrong: either the measurements are flawed, or the standard model of cosmology is incomplete. This project aims to resolve the conflict by applying Bayesian statistical methods to combine data from gravitational wave detections of merging black holes and neutron stars, alongside measurements from the tip of the red giant branch, a newer technique for measuring cosmic distances. If successful, the research will produce the most robust possible estimate of how fast the universe is actually expanding. This is primarily curiosity-driven fundamental science with no immediate practical application. However, resolving the Hubble tension could reshape our understanding of dark energy, the early universe, and the fundamental laws of physics—much as resolving earlier cosmological puzzles led to the discovery of dark matter and the accelerating expansion of the universe.

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The discovery, just under a century ago, that the Universe is expanding introduced the idea of the Hubble constant, H0, which characterises both the current rate of the cosmological expansion and the overall timescale since the Big Bang. In the last decade there have been several different methods which have yielded measurements of H0 to a precision of a few per cent; however, these measurements are in conflict with each other, a phenomenon known as the Hubble tension. Resolving the Hubble tension is one of the main problems in cosmology at present, and a particular challenge comes from the (claimed) precision of the various measurements as it means great care must be taken with modelling assumptions, statistical methodology, and other technical aspects of the data analysis methods. This project is centred around the use of Bayesian methods to provide a coherent approach to characterising the uncertainties in all these data-sets, with a particular focus on gravitational wave measurements of compact binary mergers (which will be independent of other current methods) and the tip of the red giant branch (TRGB) methods which have recently become competitive. The project will involve a combination of data-wrangling, modelling and computational/numerical work with the aim of making the most robust statements possible just how fast the Unverise is actually expanding.

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Researchers

James GIBBON (Student)

Related Research

Grants with similar aims, by meaning.

Elimination of H0 Systematics with Novel Analysis Techniques
Bayesian analysis of the dynamic Universe
Cosmology with gravitational waves in the advanced detector era
Red teaming the H0 Tension
Theoretical Cosmology

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