Halo mass function and scale-dependent bias from N-body simulations with non-Gaussian initial conditions
Annalisa Pillepich (ETH Zurich), Cristiano Porciani (AIfA Bonn, ETH, Zurich), Oliver Hahn (ETH Zurich)

TL;DR
This study uses high-resolution N-body simulations to analyze how primordial non-Gaussianity affects the halo mass function and scale-dependent bias, providing new fitting formulas and insights for cosmological models.
Contribution
It introduces universal and non-universal fitting formulas for the halo mass function and bias in non-Gaussian cosmologies, extending previous Gaussian-based models.
Findings
Mass function remains approximately universal in non-Gaussian scenarios.
Non-Gaussianity causes up to 2% deviation in matter power spectrum.
Halo bias exhibits strong scale dependence on large scales.
Abstract
We perform a series of high-resolution N-body simulations of cosmological structure formation starting from Gaussian and non-Gaussian initial conditions. We adopt the best-fitting cosmological parameters of WMAP (3rd- and 5th-year) and we consider non-Gaussianity of the local type parameterised by 8 different values of the non-linearity parameter F_NL. Building upon previous work based on the Gaussian case, we show that, expressed in terms of suitable variables, the mass function of friends-of-friends haloes is approximately universal (i.e. independent of redshift, cosmology, and matter transfer function) to good precision (nearly 10 per cent) also in non-Gaussian scenarios. We provide fitting formulae for the high-mass end (M>10^13 M_sol/h) of the universal mass function in terms of F_NL, and we also present a non-universal fit in terms of both F_NL and z to be used for applications…
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