A general theory of linear cosmological perturbations: scalar-tensor and vector-tensor theories
arXiv:1604.01396 · doi:10.1088/1475-7516/2016/08/007
Abstract
We present a method for parametrizing linear cosmological perturbations of theories of gravity, around homogeneous and isotropic backgrounds. The method is sufficiently general and systematic that it can be applied to theories with any degrees of freedom (DoFs) and arbitrary gauge symmetries. In this paper, we focus on scalar-tensor and vector-tensor theories, invariant under linear coordinate transformations. In the case of scalar-tensor theories, we use our framework to recover the simple parametrizations of linearized Horndeski and "Beyond Horndeski" theories, and also find higher-derivative corrections. In the case of vector-tensor theories, we first construct the most general quadratic action for perturbations that leads to second-order equations of motion, which propagates two scalar DoFs. Then we specialize to the case in which the vector field is time-like (à la Einstein-Aether gravity), where the theory only propagates one scalar DoF. As a result, we identify the complete forms of the quadratic actions for perturbations, and the number of free parameters that need to be defined, to cosmologically characterize these two broad classes of theories.
Two code packages (xIST and COPPER) are published with this paper and can be downloaded from https://github.com/noller/xIST. Final version with minor changes
References in corpus (19)
- The Effective Field Theory of Inflation
- Covariant Galileon
- Healthy theories beyond Horndeski
- Effective Field Theory for Inflation
- Avoiding Dark Energy with 1/R Modifications of Gravity
- Exploring gravitational theories beyond Horndeski
- Maximal freedom at minimum cost: linear large-scale structure in general modifications of gravity
- Distinguishing Modified Gravity from Dark Energy
- The Effective Theory of Quintessence: the w<-1 Side Unveiled
- Dark Energy versus Modified Gravity
- A unifying description of dark energy
- Current constraints on the cosmic growth history
- The Parameterized Post-Friedmann Framework for Theories of Modified Gravity: Concepts, Formalism and Examples
- Effective Field Theory of Cosmic Acceleration: constraining dark energy with CMB data
- How to optimally parametrize deviations from General Relativity in the evolution of cosmological perturbations
- The Parameterized Post-Friedmannian Framework for Interacting Dark Energy Theories
- Vector field models of modified gravity and the dark sector
- On the growth of structure in theories with a dynamical preferred frame
- A sub-horizon framework for probing the relationship between the cosmological matter distribution and metric perturbations
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