Pith. sign in

Towards reconstructing the halo clustering and halo mass function of N-body simulations using neural ratio estimation

1 Pith paper cite this work. Polarity classification is still indexing.

1 Pith paper citing it
abstract

High-resolution cosmological N-body simulations are excellent tools for modelling the formation and clustering of dark matter haloes. These simulations suggest complex physical theories of halo formation governed by a set of effective physical parameters. Our goal is to extract these parameters and their uncertainties in a Bayesian context. We make a step towards automatising this process by directly comparing dark matter density projection maps extracted from cosmological simulations, with density projections generated from an analytical halo model. The model is based on a toy implementation of two body correlation functions. To accomplish this we use marginal neural ratio estimation, an algorithm for simulation-based inference that allows marginal posteriors to be estimated by approximating marginal likelihood-to-evidence ratios with a neural network. In this case, we train a neural network with mock images to identify the correct values of the physical parameters that produced a given image. Using the trained neural network on cosmological N-body simulation images we are able to reconstruct the halo mass function, to generate mock images similar to the N-body simulation images and to identify the lowest mass of the haloes of those images, provided that they have the same clustering with our training data. Our results indicate that this is a promising approach in the path towards developing cosmological simulations assisted by neural networks.

fields

astro-ph.CO 1

years

2024 1

verdicts

CONDITIONAL 1

representative citing papers

Learning Optimal and Interpretable Summary Statistics of Galaxy Catalogs with SBI

astro-ph.CO · 2024-11-13 · conditional · novelty 6.0

Jointly training a graph neural network with a normalizing flow yields low-dimensional summary statistics from simulated galaxy catalogs that support likelihood-free inference of Omega_m, and can be interpreted via correlations with power spectrum and baryonic suppression.

citing papers explorer

Showing 1 of 1 citing paper.

  • Learning Optimal and Interpretable Summary Statistics of Galaxy Catalogs with SBI astro-ph.CO · 2024-11-13 · conditional · none · ref 68 · internal anchor

    Jointly training a graph neural network with a normalizing flow yields low-dimensional summary statistics from simulated galaxy catalogs that support likelihood-free inference of Omega_m, and can be interpreted via correlations with power spectrum and baryonic suppression.