CosmoGridV1: a simulated $w$CDM theory prediction for map-level cosmological inference
Tomasz Kacprzak, Janis Fluri, Aurel Schneider, Alexandre Refregier,, Joachim Stadel

TL;DR
CosmoGridV1 provides an extensive set of simulated cosmological maps and data for map-level inference in large scale structure, enabling advanced analysis with non-Gaussian statistics and machine learning for Stage-III surveys.
Contribution
It introduces a comprehensive simulation suite covering the $w$CDM parameter space with benchmark tests, baryon feedback effects, and map-level data for cosmological inference.
Findings
Provides 2500 grid points with simulations across $w$CDM parameters.
Includes benchmark simulations for testing analysis sensitivity.
Offers baryon feedback modeling on map level.
Abstract
We present CosmoGridV1: a large set of lightcone simulations for map-level cosmological inference with probes of large scale structure. It is designed for cosmological parameter measurement based on Stage-III photometric surveys with non-Gaussian statistics and machine learning. CosmoGridV1 spans the CDM model by varying , , , , , , and assumes three degenerate neutrinos with = 0.06 eV. This space is covered by 2500 grid points on a Sobol sequence. At each grid point, we run 7 simulations with PkdGrav3 and store 69 particle maps at nside=2048 up to =3.5, as well as halo catalog snapshots. The fiducial cosmology has 200 independent simulations, along with their stencil derivatives. An important part of CosmoGridV1 is the benchmark set of 28 simulations, which include larger boxes, higher particle counts, and higher redshift…
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Taxonomy
TopicsAstrophysics and Cosmic Phenomena · Computational Physics and Python Applications · Galaxies: Formation, Evolution, Phenomena
