Testing (modified) gravity with 3D and tomographic cosmic shear
arXiv:1801.04251 · doi:10.1093/mnras/sty2092
Abstract
Cosmic shear is one of the primary probes to test gravity with current and future surveys. There are two main techniques to analyse a cosmic shear survey; a tomographic method, where correlations between the lensing signal in different redshift bins are used to recover redshift information, and a 3D approach, where the full redshift information is carried through the entire analysis. Here we compare the two methods, by forecasting cosmological constraints for future surveys like Euclid. We extend the 3D formalism for the first time to theories beyond the standard model, belonging to the Horndeski class. This includes the majority of universally coupled extensions to CDM with one scalar degree of freedom in addition to the metric, still in agreement with current observations. Given a fixed background, the evolution of linear perturbations in Horndeski gravity is described by a set of four functions of time only. We model their time evolution assuming proportionality to the dark energy density fraction and place Fisher matrix constraints on the proportionality coefficients. We find that a 3D analysis can constrain Horndeski theories better than a tomographic one, in particular with a decrease in the errors of the order of 20. This paper shows for the first time a quantitative comparison on an equal footing between Fisher matrix forecasts for both a fully 3D and a tomographic analysis of cosmic shear surveys. The increased sensitivity of the 3D formalism comes from its ability to retain information on the source redshifts along the entire analysis.
15 pages, 10 figures, matches published MNRAS version
References in corpus (23)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Resummation of Massive Gravity
- Covariant Galileon
- Dark Energy after GW170817: dead ends and the road ahead
- Strong constraints on cosmological gravity from GW170817 and GRB 170817A
- Implications of the Neutron Star Merger GW170817 for Cosmological Scalar-Tensor Theories
- Healthy theories beyond Horndeski
- Imperfect Dark Energy from Kinetic Gravity Braiding
- Avoiding Dark Energy with 1/R Modifications of Gravity
- The Cosmic Linear Anisotropy Solving System (CLASS) I: Overview
- G-inflation: inflation driven by the Galileon field
- Extended Limber Approximation
- Maximal freedom at minimum cost: linear large-scale structure in general modifications of gravity
- Measuring the dark side (with weak lensing)
- Weak lensing for precision cosmology
- Self-accelerating universe in scalar-tensor theories after GW170817
- Measuring dark energy properties with 3D cosmic shear
- Cosmological constraints from COMBO-17 using 3D weak lensing
- Horndeski theories self-tuning to a de Sitter vacuum
- Large-scale structure phenomenology of viable Horndeski theories
- A parametrisation of modified gravity on nonlinear cosmological scales
- Parametrizing modified gravity for cosmological surveys
- Dark energy constraints and correlations with systematics from CFHTLS weak lensing, SNLS supernovae Ia and WMAP5
Cited by in corpus (38)
- Testing General Relativity in Cosmology
- Effective Field Theory of Dark Energy: a Review
- Dark Energy in light of Multi-Messenger Gravitational-Wave astronomy
- On the road to percent accuracy: nonlinear reaction of the matter power spectrum to dark energy and modified gravity
- Cosmological parameter constraints for Horndeski scalar-tensor gravity
- The Novel Probes Project -- Tests of Gravity on Astrophysical Scales
- Reconstructing Gravity on Cosmological Scales
- Positivity in the sky
- hi_class: Background Evolution, Initial Conditions and Approximation Schemes
- Constraining neutrino mass with weak lensing Minkowski Functionals
- KiDS+GAMA: Constraints on Horndeski gravity from combined large-scale structure probes
- Positivity Bounds on Dark Energy: When Matter Matters
- The road ahead of Horndeski: cosmology of surviving scalar-tensor theories
- Cosmological constraints on dark energy in light of gravitational wave bounds
- Optimising growth of structure constraints on modified gravity
- Cosmic Shear: Inference from Forward Models
- KiDS-SBI: Simulation-based inference analysis of KiDS-1000 cosmic shear
- Investigating scalar-tensor-gravity with statistics of the cosmic large-scale structure
- Cosmological gravity on all scales II: Model independent modified gravity -body simulations
- : Fast, approximate simulations of structure formation in Horndeski gravity
- Gravitational Redshift Constraints on the Effective Theory of Interacting Dark Energy
- Scalar Fields Near Compact Objects: Resummation versus UV Completion
- Probing the speed of gravity with LVK, LISA, and joint observations
- Clustering dark energy imprints on cosmological observables of the gravitational field
- Testing the Speed of Gravity with Black Hole Ringdown
- Constraining extended cosmologies with GWLSS cross-correlations
- 3D cosmic shear: numerical challenges, 3D lensing random fields generation and Minkowski Functionals for cosmological inference
- Cosmological Tests of Gravity: A Future Perspective
- On tachyonic stability priors for dark energy
- Optimising tomography for weak gravitational lensing surveys
- Cosmological gravity on all scales III: non-linear matter power spectrum in phenomenological modified gravity
- Improvements in cosmological constraints from breaking growth degeneracy
- Detecting Baryon Acoustic Oscillations in Dark Matter from Kinematic Weak Lensing Surveys
- KiDS-Legacy: Constraints on Horndeski gravity from weak lensing combined with galaxy clustering and cosmic microwave background anisotropies
- Theoretical priors in scalar-tensor cosmologies: Shift-symmetric Horndeski models
- Testing modified (Horndeski) gravity by combining intrinsic galaxyalignments with cosmic shear
- Testing the growth of cosmic structures during the Dark Ages
- Euclid: Optimising tomographic redshift binning for 32pt power spectrum constraints on dark energy