Recovering the Primordial Density Fluctuations: A comparison of methods
arXiv:astro-ph/9806255 · doi:10.1086/307040
Abstract
We present a comparative study of six different methods for reversing the gravitational evolution of a cosmological density field to recover the primordial fluctuations: linear theory, the Gaussianization mapping scheme, two different quasi-linear dynamical schemes based on the Zel'dovich approximation, a Hybrid dynamical-Gaussianization method and the Path Interchange Zel'dovich Approximation (PIZA). The final evolved density field from an N-body simulation constitutes our test case. We use a variety of statistical measures to compare the initial density field recovered from it to the true initial density field, using each of the six different schemes. These include point-by-point comparisons of the density fields in real space, the individual modes in Fourier space, as well as global statistical properties such as the genus, the PDF of the density, and the distribution of peak heights and their shapes. We find linear theory to be the most inaccurate of all the schemes. The Gaussianization scheme is the least accurate after linear theory. The two quasi-linear dynamical schemes are more accurate than Gaussianization, although they break down quite drastically when used outside their range of validity - the quasi-linear regime. The complementary beneficial aspects of the dynamical and the Gaussianization schemes are combined in the Hybrid method. We find this Hybrid scheme to be more accurate and robust than either Gaussianization or the dynamical method alone. The PIZA scheme performs substantially better than the others in all point-by-point comparisons. However, it produces an oversmoothed initial density field, with a smaller number of peaks than expected, but recovers the PDF of the initial density with impressive accuracy on scales as small as 3Mpc/h.
39 pages, including 13 Figures, submitted to ApJ
References in corpus (6)
- Estimating non-gaussianity in the microwave background
- Cosmological Perturbation Theory and the Spherical Collapse Model - I. Gaussian Initial Conditions
- Using Cluster Abundances and Peculiar Velocities to Test the Gaussianity of the Cosmological Density Field
- Reconstruction Analysis of Galaxy Redshift Surveys: A Hybrid Reconstruction Method
- Genus Statistics of the Virgo N-body simulations and the 1.2-Jy Redshift Survey
- Estimates for the Luminosity Function of Galaxies and its Evolution
Cited by in corpus (19)
- Improving Cosmological Distance Measurements by Reconstruction of the Baryon Acoustic Peak
- Information field theory for cosmological perturbation reconstruction and non-linear signal analysis
- Reconstruction of the early Universe as a convex optimization problem
- A reconstruction of the initial conditions of the Universe by optimal mass transportation
- Iterative initial condition reconstruction
- Reconstructing large-scale structure with neutral hydrogen surveys
- Reconstruction of cosmological initial conditions from galaxy redshift catalogues
- Perturbation theory and excursion set estimates of the probability distribution function of dark matter, and a method for reconstructing the initial distribution function
- From Finance to Cosmology: The Copula of Large-Scale Structure
- Isobaric Reconstruction of the Baryonic Acoustic Oscillation
- A fast semi-discrete optimal transport algorithm for a unique reconstruction of the early Universe
- Reconstruction of the primordial Universe by a Monge--Ampere--Kantorovich optimisation scheme
- Constraining dark energy via baryon acoustic oscillations in the (an)isotropic light-cone power spectrum
- Straightening the Density-Displacement Relation with a Logarithmic Transform
- Using Perturbative Least Action to Recover Cosmological Initial Conditions
- The 1-point PDF of the Initial Conditions of our Local Universe from the IRAS PSC redshift catalogue
- Using Perturbative Least Action to Reconstruct Redshift Space Distortions
- Reconstruction Analysis of the IRAS Point Source Catalog Redshift Survey
- Recovering the Initial Condition of our Local Universe from NOG and PSCz Catalogues