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BOSS Correlation Function analysis from the Effective Field Theory of Large-Scale Structure

Pierre ZhangCAS Key Laboratory for Research in Galaxies and Cosmology, University of Science and Technology of China, Hefei, Anhui 230026, ChinaGuido D’AmicoDepartment of Mathematical, Physical and Computer Sciences, University of Parma, 43124 Parma, ItalyLeonardo SenatoreInstitut fur Theoretische Physik, ETH Zurich, 8093 Zurich, SwitzerlandCheng ZhaoInstitute of Physics, Laboratory of Astrophysics, École Polytechnique Fédérale de Lausanne (EPFL), Observatoire de Sauverny, CH-1290 Versoix, SwitzerlandYi-Fu CaiCAS Key Laboratory for Research in Galaxies and Cosmology, University of Science and Technology of China, Hefei, Anhui 230026, China
2022en
ABI

Аннотация

Abstract After calibrating the predictions of the Effective Field Theory of Large-Scale Structure against several sets of simulations, as well as implementing a new method to assert the scale cut of the theory without the use of any simulation, we analyze the Full Shape of the BOSS Correlation Function. Imposing a prior from Big Bang Nucleosynthesis on the baryon density, we are able to measure all the parameters in ΛCDM + massive neutrinos in normal hierarchy, except for the total neutrino mass, which is just bounded. When combining the BOSS Full Shape with the Baryon Acoustic Oscillation measurements from BOSS, 6DF/MGS and eBOSS, we determine the present day Hubble constant, H 0 , the present day matter fraction, Ω m , the amplitude of the primordial power spectrum, A s , and the tilt of the primordial power spectrum, n s , to 1.4 %, 4.5 %, 23.5% and 7.6% precision, respectively, at 68 %-confidence level, finding H 0 =68.19 ± 0.99 (km/s)/Mpc, Q m =0.309± 0.014, ln (10 10 A s )=3.12 +0.21 -0.26 and n s =0.963 +0.062 -0.085 , and we bound the total neutrino mass to 0.87 eV at 95 %-confidence level. These constraints are fully consistent with Planck results and the ones obtained from BOSS power spectrum analysis. In particular, we find no tension in H 0 or σ 8 with Planck measurements, finding consistency at 1.2σ and 0.6σ, respectively.

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