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arXiv:2205.00569·v3·Cosmology and Nongalactic Astrophysics

Fisher matrix for the one-loop galaxy power spectrum: measuring expansion and growth rates without assuming a cosmological model

Luca Amendola (Heidelberg University, Germany)🇩🇪 · Massimo Pietroni (University of Parma and INFN, Italy)🇮🇹 · Miguel Quartin (Universidade Federal do Rio de Janeiro, Brazil and Heidelberg University, Germany)🇩🇪

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Abstract

We introduce a methodology to extend the Fisher matrix forecasts to mildly non-linear scales without the need of selecting a cosmological model. We make use of standard non-linear perturbation theory for biased tracers complemented by counterterms, and assume that the cosmological distances can be measured accurately with standard candles. Instead of choosing a specific model, we parametrize the linear power spectrum and the growth rate in several and bins. We show that one can then obtain model-independent constraints of the expansion rate and the growth rate , besides the bias functions. We apply the technique to both Euclid and DESI public specifications in the range and show that the gain in precision when going from to /Mpc is around two- to threefold, while it reaches four- to ninefold when extending to /Mpc. In absolute terms, with Mpc, one can reach high precision on at each -shell: 8-10% for DESI with , 5-6% for Euclid with . This improves to 1-2% if the growth rate is taken to be -independent. The growth rate itself has in general much weaker constraints, unless assumed to be -independent, in which case the gain is similar to the one for and uncertainties around 5-15% can be reached at each -bin. We also discuss how neglecting the non-linear corrections can have a large effect on the constraints even for Mpc, unless one has independent strong prior information on the non-linear parameters.

Comments: v3: new appendix E discussing the AP effect under binning of mu and k; code upgraded to include non-diagonal beta(k) entries; accepted for publication in JCAP v2: corrected bug affecting high-k results; included extra FoG-related nuisance parameters; extended discussion and analysis; new Appendix D; 12 new references

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