An Étude on the Regularization and Renormalization of Divergences in Primordial Observables
arXiv:2402.10008 · doi:10.1007/s40766-024-00053-0
Abstract
Many cosmological observables of interest derive from primordial vacuum fluctuations evolved to late times. These observables represent statistical draws from some underlying quantum or statistical field theoretic framework where infinities arise and require regularization. After subtracting divergences, renormalization conditions must be imposed by measurements or observations at some scale, mindful of scheme and background dependence. We review this process on backgrounds that transition from finite duration inflation to radiation domination, and show how in spite of the ubiquity of scaleless integrals, UV divergences can still be meaningfully extracted from quantities that nominally vanish when dimensionally regularized. In this way, one can contextualize calculations with hard cutoffs, distinguishing between UV and IR scales corresponding to the beginning and end of inflation from UV and IR scales corresponding the unknown completion of the theory and its observables. This distinction has significance as observable quantities cannot depend on the latter although they will certainly depend on the former. One can also explicitly show the scheme independence of the coefficients of UV divergent logarithms. Furthermore, certain IR divergences can be shown to be an artifact of the de Sitter limit and are cured for finite duration inflation. For gravitational wave observables, we stress the need to regularize stress tensors that do not presume a prior scale separation in their construction (as with the standard Isaacson form), deriving an improved stress tensor fit to purpose. We conclude by highlighting the inextricable connection between inferring bounds from vacuum tensor perturbations and the process of background renormalization.
25 pages, 4 appendices, 4 figures; matches published version
References in corpus (20)
- A new cosmic microwave background constraint to primordial gravitational waves
- Generation of fluctuations during inflation: comparison of stochastic and field-theoretic approaches
- Semiclassical relations and IR effects in de Sitter and slow-roll space-times
- Primordial gravitational waves from NANOGrav: a broken power-law approach
- Breakdown of Semiclassical Methods in de Sitter Space
- Quantum Stability of a w < - 1 Phase of Cosmic Acceleration
- Stochastic growth of quantum fluctuations during slow-roll inflation
- On the divergences of inflationary superhorizon perturbations
- On the Physical Significance of Infra-red Corrections to Inflationary Observables
- Power spectrum in stochastic inflation
- Statistics of coarse-grained cosmological fields in stochastic inflation
- Stochastic inflationary dynamics beyond slow-roll and consequences for primordial black hole formation
- Multi-wavelength constraints on the inflationary consistency relation
- Cosmological Horizon Modes and Linear Response in de Sitter Spacetime
- New constraint on the tensor-to-scalar ratio from the and BICEP/Keck Array data using the profile likelihood
- Review on stochastic approach to inflation
- Improved constraint on the primordial gravitational-wave density using recent cosmological data and its impact on cosmic string models
- Towards a reliable calculation of relic radiation from primordial gravitational waves
- CFTs Blueshift Tensor Fluctuations Universally
- Ultraviolet-regularized power spectrum without infrared distortions in cosmological spacetimes