2017/11/30 by Alexandre Barreira, Elisabeth Krause, Fabian Schmidt · 65 citations
Physics and Astronomy · #Astronomy and Astrophysical Research #Cosmological perturbation theory #Cosmology and Gravitation Theories #Covariance #Galaxies: Formation, Evolution, Phenomena #Gravitational lensing formalism #Matter power spectrum #Nonlinear system #Redshift #Spectral density #Strong gravitational lensing #Weak gravitational lensing #astro-ph.CO
paper · pdf · doi:10.1088/1475-7516/2018/06/015
published in Journal of Cosmology and Astroparticle Physics 2018(06), 015 (Institute of Physics) · 23 pages + appendices; 5 figures. Major improvements in v3: (i) added derivation of SSC beyond flat-sky/Limber approximations; (ii) results now use simulation measurements of the tidal response coefficient. Conclusions remain otherwise the same
openalex created_date 2017/12/04 · arxiv created 2018/04/24 · openalex publication_date 2018/06/11 · arxiv updated 2018/06/27 · openalex updated_date 2026/08/05
We derive the complete super-sample covariance (SSC) of the matter and weak lensing convergence power spectra using the power spectrum response formalism to accurately describe the coupling of super- to sub-survey modes. The SSC term is completely characterized by the survey window function, the nonlinear matter power spectrum and the full first-order nonlinear power spectrum response function, which describes the response to super-survey density and tidal field perturbations. Generalized separate universe simulations can efficiently measure these responses in the nonlinear regime of structure formation, which is necessary for lensing applications. We derive the lensing SSC formulae for two cases: one under the Limber and flat-sky approximations, and a more general one that goes beyond the Limber approximation in the super-survey mode and is valid for curved sky applications. Quantitatively, we find that for sky fractions f sky ≈ 0.3 and a single source redshift at z S =1, the use of the flat-sky and Limber approximation underestimates the total SSC contribution by ≈ 10%. The contribution from super-survey tidal fields to the lensing SSC, which has not been included in cosmological analyses so far, is shown to represent about 5% of the total lensing covariance on multipoles ℓ 1 ,ℓ 2 ≳ 300. The SSC is the dominant off-diagonal contribution to the total lensing covariance, making it appropriate to include these tidal terms and beyond flat-sky/Limber corrections in cosmic shear analyses.