On the Statistical Evolution of the Large-scale Structure and the Effective Dynamics
arXiv:1612.05995 · doi:10.1088/1475-7516/2021/10/037
Abstract
In this paper, we study the statistical evolution of the large-scale structure (LSS), focusing on the joint probability distribution function (PDF) of the coarse-grained cosmic field and its role in constructing effective dynamics. As the most comprehensive statistics, this PDF encodes all cosmological information of large-scale modes, therefore, could serve as the basis in the LSS modelling. Following the so-called PDF-based method from turbulence, we write down this PDF's evolution equation, which describes the probability conservation. We show that this conservation equation's characteristic curves follow the same PDF history and could be considered as an effective dynamics of the coarse-grained field. Unlike the EFT of LSS, which conceptually would work at both realization and statistics level, this effective dynamics is valid only statistically. However, this `statistical equivalence' also provides valuable insight into scale interactions at the statistical level. It also enables predicting a wide variety of statistics beyond the typical N-point polyspectra, including, e.g. topologies, density PDF and non-linear covariance matrices etc. Our formula expresses the small-scale effect as the ensemble average of their interactions conditional on the large-scale modes. This suggests an interesting way to measure effective terms directly from simulation. By applying the Gram-Charlier expansion, we demonstrate a different structure of these effective terms. This formalism is a natural framework for discussing the evolution of statistical properties of large-scale modes, and provides an alternative view for understanding the relationship between general effective dynamics and standard perturbation theory.
Accepted version, overcome procrastination
References in corpus (17)
- The Effective Field Theory of Cosmological Large Scale Structures
- Resumming Cosmological Perturbations via the Lagrangian Picture: One-loop Results in Real Space and in Redshift Space
- Nonlinear Evolution of Baryon Acoustic Oscillations
- The IR-resummed Effective Field Theory of Large Scale Structures
- The Excursion Set Theory of Halo Mass Functions, Halo Clustering, and Halo Growth
- A critical look at cosmological perturbation theory techniques
- Generation of Vorticity and Velocity Dispersion by Orbit Crossing
- Time-Sliced Perturbation Theory II: Baryon Acoustic Oscillations and Infrared Resummation
- Multi-Point Propagators in Cosmological Gravitational Instability
- The Bispectrum in the Effective Field Theory of Large Scale Structure
- Nonlinear Perturbation Theory Integrated with Nonlocal Bias, Redshift-space Distortions, and Primordial Non-Gaussianity
- Separate Universe Simulations
- Super-Sample Signal
- The Trispectrum in the Effective Field Theory of Large Scale Structure
- Non-perturbative probability distribution function for cosmological counts in cells
- Large deviations theory approach to cosmic shear calculations: the one-point aperture mass
- Two is better than one: joint statistics of density and velocity in concentric spheres as a cosmological probe