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- W2885711438 endingPage "019" @default.
- W2885711438 startingPage "019" @default.
- W2885711438 abstract "Gravity-induced non-Gaussianity in the large-scale structure of the Universe, characterised by higher-order statistics such as the bispectrum (three-point cumulant), is expected to contain rich cosmological information. A measurement of the bispectrum will not only improve the cosmological constraints, but also give us the possibility to probe gravity on cosmological scales. In this paper, we present a framework to numerically calculate the one-loop matter bispectrum based on standard perturbation theory (SPT). This approach allows general modifications to the standard ΛCDM model to be easily implemented. We demonstrate the performance of the bispectrum calculation in three representative cases, namely the Vainshtein-screened Dvali-Gabadadze-Porrati (DGP) model, the chameleon-screened Hu-Sawicki f(R) model and the phenomenological dark scattering (DS) momentum-exchange model. The predicted bispectra are then compared with measured results from a set of cosmological N-body simulations, and the impact of possible systematics arising from simplified or approximate treatments in the perturbative calculation is studied in detail. We find that the one-loop bispectrum calculation offers significantly more information on general screening and momentum exchange effects than the leading-order bispectrum calculation. Further, the accuracy of the one-loop prediction is shown to be comparable to non-linear fitting formulas over a wide range of wavenumbers (k≲0.3 hMpc−1) even at lower redshifts, z≲ 1." @default.
- W2885711438 created "2018-08-22" @default.
- W2885711438 creator A5002865396 @default.
- W2885711438 creator A5051365088 @default.
- W2885711438 date "2018-10-15" @default.
- W2885711438 modified "2023-10-02" @default.
- W2885711438 title "The one-loop matter bispectrum as a probe of gravity and dark energy" @default.
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