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Cosmological analysis of the DESI DR1 Lyman alpha 1D power spectrum

Published 29 Jan 2026 in astro-ph.CO | (2601.21432v1)

Abstract: We present the cosmological analysis of the one-dimensional Lyman-αα flux power spectrum from the first data release of the Dark Energy Spectroscopic Instrument (DESI). We capture the dependence of the signal on cosmology and intergalactic medium physics using an emulator trained on a cosmological suite of hydrodynamical simulations, and we correct its predictions for the impact of astrophysical contaminants and systematics, many of these not considered in previous analyses. We employ this framework to constrain the amplitude and logarithmic slope of the linear matter power spectrum at k=0.009km<sup>1sk_\star=0.009\,\mathrm{km<sup>{-1}s} and redshift z=3z=3, obtaining Δ<sup>2=0.379±0.032Δ<sup>2_\star=0.379\pm0.032 and n=2.309±0.019n_\star=-2.309\pm0.019. The robustness of these constraints is validated through the analysis of mocks and a large number of alternative data analysis variations, with cosmological parameters kept blinded throughout the validation process. We then combine our results with constraints from DESI BAO and temperature, polarization, and lensing measurements from Planck, ACT, and SPT-3G to set constraints on ΛΛCDM extensions. While our measurements do not significantly tighten the limits on the sum of neutrino masses from the combination of these probes, they sharpen the constraints on the effective number of relativistic species, Neff=3.02±0.10N_\mathrm{eff}=3.02\pm0.10, the running of the spectral index, α<em>s=0.0014±0.0041α<em>\mathrm{s}=0.0014\pm0.0041, and the running of the running, β</em>s=0.0006±0.0048β</em>\mathrm{s}=-0.0006\pm0.0048, by a factor of 1.18, 1.27, and 1.90, respectively. We conclude by outlining the improvements needed to fully reach the level of confidence implied by these uncertainties.

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