English

Quantum estimation of cosmological parameters

Cosmology and Nongalactic Astrophysics 2026-02-23 v2 General Relativity and Quantum Cosmology High Energy Physics - Theory Quantum Physics

Abstract

Understanding how well future cosmological experiments can reconstruct the mechanism that generated primordial inhomogeneities is key to assessing the extent to which cosmology can inform fundamental physics. In this work, we apply a quantum metrology tool - the quantum Fisher information - to the squeezed quantum state describing cosmological perturbations at the end of inflation. This quantifies the ultimate precision achievable in parameter estimation, assuming ideal access to early-universe information. By comparing the quantum Fisher information to its classical counterpart - derived from measurements of the curvature perturbation power spectrum alone (homodyne measurement) - we evaluate how close current observations come to this quantum limit. Focusing on the tensor-to-scalar ratio as a case study, we find that the gap between classical and quantum Fisher information grows exponentially with the number of e-folds a mode spends outside the horizon. This suggests the existence of a highly efficient (but presently inaccessible) optimal measurement. Conversely, we show that accessing the decaying mode of inflationary perturbations is a necessary (but not sufficient) condition for exponentially improving the inference of the tensor-to-scalar ratio.

Keywords

Cite

@article{arxiv.2507.12228,
  title  = {Quantum estimation of cosmological parameters},
  author = {Michał Piotrak and Thomas Colas and Ana Alonso-Serrano and Alessio Serafini},
  journal= {arXiv preprint arXiv:2507.12228},
  year   = {2026}
}

Comments

27 pages without appendices (41 pages in total), 3 figures; matches published version in JHEP

R2 v1 2026-07-01T04:04:17.223Z