English

Lognormal semi-numerical simulations of the Lyman-$\alpha$ forest: comparison with full hydrodynamic simulations

Cosmology and Nongalactic Astrophysics 2023-02-15 v2

Abstract

Observations of the Lyman-α\alpha (Lyα\alpha) forest in spectra of distant quasars enable us to probe the matter power spectrum at relatively small scales. With several upcoming surveys, it is expected that there will be a many-fold increase in the quantity and quality of data, and hence it is important to develop efficient simulations to forward model these data sets. One such semi-numerical method is based on the assumption that the baryonic densities in the intergalactic medium (IGM) follow a lognormal distribution. In this work, we test the robustness of the lognormal model of the Lyα\alpha forest in recovering a set of IGM parameters by comparing with high-resolution Sherwood SPH simulations. We study the recovery of the parameters T0T_0 (temperature of the mean-density IGM), γ\gamma (slope of the temperature-density relation) and Γ12\Gamma_{12} (hydrogen photoionization rate) at z2.5z \sim 2.5 using a Markov Chain Monte Carlo (MCMC) technique for parameter estimation. Using three flux statistics, the probability distribution, the mean flux and the power spectrum, values of all three parameters, T0T_0, γ\gamma and Γ12\Gamma_{12} implied in the SPH simulations are recovered within 1σ1 - \sigma (\sim 9, 4 and 1% respectively) of the median (best-fit) values. We verify the validity of our results at different baryon smoothing filter, SNR, box size & resolution, and data seed and confirm that the lognormal model can be used as an efficient tool for modelling the Lyα\alpha transmitted flux at z2.5z \sim 2.5.

Keywords

Cite

@article{arxiv.2206.08013,
  title  = {Lognormal semi-numerical simulations of the Lyman-$\alpha$ forest: comparison with full hydrodynamic simulations},
  author = {Bhaskar Arya and Tirthankar Roy Choudhury and Aseem Paranjape and Prakash Gaikwad},
  journal= {arXiv preprint arXiv:2206.08013},
  year   = {2023}
}

Comments

16 pages, 11 figures; v2: revised version accepted in MNRAS