TL;DR
Paired fixed fields in cosmological simulations significantly reduce statistical variance in key power spectra without bias, enhancing accuracy for large-scale structure predictions.
Contribution
This study demonstrates that paired fixed simulations drastically decrease sample variance across multiple cosmological quantities without introducing bias, improving simulation precision.
Findings
Variance reduction factors up to 10^6 in power spectra.
No bias introduced in any examined quantities.
Sample variance can be highly suppressed by pairing after fixing.
Abstract
The initial conditions of cosmological simulations are commonly drawn from a Gaussian ensemble. The limited number of modes inside a simulation volume gives rise to statistical fluctuations known as \textit{sample variance}, limiting the accuracy of simulation predictions. Fixed fields offer an alternative initialization strategy; they have the same power spectrum as standard Gaussian fields but without intrinsic amplitude scatter at linear order. Paired fixed fields consists of two fixed fields with opposite phases that cancel phase correlations which otherwise induce second-order scatter in the non-linear power spectrum. We study the statistical properties of those fields for 19 different quantities at different redshifts through a large set of 600 N-body and 506 state-of-the-art magneto-hydrodynamic simulations covering a wide range of scales, mass and spatial resolutions. We find…
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