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    Planck 2018 results: V. CMB power spectra and likelihoods

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    Identificadores
    URI: http://hdl.handle.net/10902/24954
    DOI: https://doi.org/10.1051/0004-6361/201936386
    ISSN: 0004-6361
    ISSN: 1432-0746
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    Autoría
    Aghanim, Nabila; Barreiro Vilas, Rita BelénAutoridad Unican; Casaponsa Galí, Biuse; Diego Rodríguez, José MaríaAutoridad Unican; Fernández Cobos, RaúlAutoridad Unican; Herranz Muñoz, DiegoAutoridad Unican; Marcos Caballero, Airam Eduardo; Martínez González, Enrique; Vielva Martínez, PatricioAutoridad Unican
    Fecha
    2020
    Derechos
    © Planck Collaboration 2020
    Publicado en
    Astronomy & Astrophysics. Vol. 641, Sepr 2020. A5
    Editorial
    EDP Sciences
    Enlace a la publicación
    https://doi.org/10.1051/0004-6361/201936386
    Palabras clave
    Cosmic background radiation
    Cosmology: observations
    Cosmological parameters
    Methods: data analysis
    Resumen/Abstract
    We describe the legacy Planck cosmic microwave background (CMB) likelihoods derived from the 2018 data release. The overall approach is similar in spirit to the one retained for the 2013 and 2015 data release, with a hybrid method using different approximations at low (??< ?30) and high (????30) multipoles, implementing several methodological and data-analysis refinements compared to previous releases. With more realistic simulations, and better correction and modelling of systematic effects, we can now make full use of the CMB polarization observed in the High Frequency Instrument (HFI) channels. The low-multipole EE cross-spectra from the 100 GHz and 143 GHz data give a constraint on the ?CDM reionization optical-depth parameter ? to better than 15% (in combination with the TT low-? data and the high-? temperature and polarization data), tightening constraints on all parameters with posterior distributions correlated with ?. We also update the weaker constraint on ? from the joint TEB likelihood using the Low Frequency Instrument (LFI) channels, which was used in 2015 as part of our baseline analysis. At higher multipoles, the CMB temperature spectrum and likelihood are very similar to previous releases. A better model of the temperature-to-polarization leakage and corrections for the effective calibrations of the polarization channels (i.e., the polarization efficiencies) allow us to make full use of polarization spectra, improving the ?CDM constraints on the parameters ?MC, ?c, ?b, and H0 by more than 30%, and ns by more than 20% compared to TT-only constraints. Extensive tests on the robustness of the modelling of the polarization data demonstrate good consistency, with some residual modelling uncertainties. At high multipoles, we are now limited mainly by the accuracy of the polarization efficiency modelling. Using our various tests, simulations, and comparison between different high-multipole likelihood implementations, we estimate the consistency of the results to be better than the 0.5?? level on the ?CDM parameters, as well as classical single-parameter extensions for the joint likelihood (to be compared to the 0.3?? levels we achieved in 2015 for the temperature data alone on ?CDM only). Minor curiosities already present in the previous releases remain, such as the differences between the best-fit ?CDM parameters for the ??< ?800 and ??> ?800 ranges of the power spectrum, or the preference for more smoothing of the power-spectrum peaks than predicted in ?CDM fits. These are shown to be driven by the temperature power spectrum and are not significantly modified by the inclusion of the polarization data. Overall, the legacy Planck CMB likelihoods provide a robust tool for constraining the cosmological model and represent a reference for future CMB observations.
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    UNIVERSIDAD DE CANTABRIA

    Repositorio realizado por la Biblioteca Universitaria utilizando DSpace software
    Contacto | Sugerencias
    Metadatos sujetos a:licencia de Creative Commons Reconocimiento 4.0 España