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NECOLA: Towards a Universal Field-level Cosmological Emulator

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arxiv 2111.02441 v1 pith:AMP6A54Y submitted 2021-11-03 astro-ph.CO astro-ph.IM

classification astro-ph.COastro-ph.IM
keywords simulationsaccuracycolacosmologicalfastfield-levelmodeln-body
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abstract

We train convolutional neural networks to correct the output of fast and approximate N-body simulations at the field level. Our model, Neural Enhanced COLA --NECOLA--, takes as input a snapshot generated by the computationally efficient COLA code and corrects the positions of the cold dark matter particles to match the results of full N-body Quijote simulations. We quantify the accuracy of the network using several summary statistics, and find that NECOLA can reproduce the results of the full N-body simulations with sub-percent accuracy down to $k\simeq1~h{\rm Mpc}^{-1}$. Furthermore, the model, that was trained on simulations with a fixed value of the cosmological parameters, is also able to correct the output of COLA simulations with different values of $\Omega_{\rm m}$, $\Omega_{\rm b}$, $h$, $n_s$, $\sigma_8$, $w$, and $M_\nu$ with very high accuracy: the power spectrum and the cross-correlation coefficients are within $\simeq1\%$ down to $k=1~h{\rm Mpc}^{-1}$. Our results indicate that the correction to the power spectrum from fast/approximate simulations or field-level perturbation theory is rather universal. Our model represents a first step towards the development of a fast field-level emulator to sample not only primordial mode amplitudes and phases, but also the parameter space defined by the values of the cosmological parameters.

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    astro-ph.CO 2024-11 conditional novelty 5.0 of 10

    A neural-network ordinary differential equation learned HYREC-2 recombination histories with 0.16 percent average error over a narrow range of three cosmological parameters.

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