Matter trispectrum: theoretical modelling and comparison to N-body simulations
Davide Gualdi, Sergi Novell-Masot, H\'ector Gil-Mar\'in, Licia, Verde

TL;DR
This paper introduces the i-trispectrum, a simplified integrated trispectrum statistic, models it using N-body simulations, and demonstrates its potential to improve constraints on primordial non-Gaussianity parameters in cosmology.
Contribution
The paper presents the first modeling and measurement of the matter i-trispectrum from simulations, showing its added value in constraining primordial non-Gaussianity.
Findings
Good agreement between model and simulations up to mildly non-linear scales.
The i-trispectrum can improve constraints on $f_{nl}$ by up to 32%.
Joint analysis with power spectrum and bispectrum enhances parameter estimation.
Abstract
The power spectrum has long been the workhorse summary statistics for large-scale structure cosmological analyses. However, gravitational non-linear evolution moves precious cosmological information from the two-point statistics (such as the power spectrum) to higher-order correlations. Moreover, information about the primordial non-Gaussian signal lies also in higher-order correlations. Without tapping into these, that information remains hidden. While the three-point function (or the bispectrum), even if not extensively, has been studied and applied to data, there has been only limited discussion about the four point/trispectrum. This is because the high-dimensionality of the statistics (in real space a skew-quadrilateral has 6 degrees of freedom), and the high number of skew-quadrilaterals, make the trispectrum numerically and algorithmically very challenging. Here we address this…
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