Accuracy of analytical models of the large-scale matter distribution
arXiv:1308.6755 · doi:10.1103/PhysRevD.88.083524
Abstract
We investigate the possible accuracy that can be reached by analytical models for the matter density power spectrum and correlation function. Using a realistic description of the power spectrum that combines perturbation theory with a halo model, we study the convergence rate of several perturbative expansion schemes and the impact of nonperturbative effects, as well as the sensitivity to phenomenological halo parameters. We check that the simple reorganization of the standard perturbative expansion, with a Gaussian damping prefactor, provides a well-ordered convergence and a finite correlation function that yields a percent accuracy at the baryon acoustic oscillation peak (as soon as one goes to second order). Lagrangian-space expansions are somewhat more efficient, when truncated at low orders, but may diverge at high orders. We find that whereas the uncertainty on the halo-profile mass-concentration relation is not a strong limitation, the uncertainty on the halo mass function can severely limit the accuracy of theoretical predictions for (this also applies to the power spectra measured in numerical simulations). The real-space correlation function provides a better separation between perturbative and nonperturbative effects, which are restricted to Mpc at all redshifts.
16 pages
References in corpus (9)
- 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
- Generation of Vorticity and Velocity Dispersion by Orbit Crossing
- Flowing with Time: a New Approach to Nonlinear Cosmological Perturbations
- A Closure Theory for Non-linear Evolution of Cosmological Power Spectra
- Large-N expansions applied to gravitational clustering
- Using the Zeldovich dynamics to test expansion schemes
- Expansion schemes for gravitational clustering: computing two-point and three-point functions
- How well can (renormalized) perturbation theory predict dark matter clustering properties?
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- The clustering of baryonic matter. I: a halo-model approach
- An Analytic Hybrid Halo + Perturbation Theory Model for Small-scale Correlators: Baryons, Halos, and Galaxies
- Divergence of Perturbation Theory in Large Scale Structures
- Simulating the Anisotropic Clustering of Luminous Red Galaxies with Subhalos: A Direct Confrontation with Observation and Cosmological Implications
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- Projection of the gravitational dynamics on a subspace of probability distributions: curl-free Gaussian ansatz
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