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Planck 2015 results. XIII. Cosmological parameters

Peter A. R. Ade, +260 more
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In this paper, the authors present results based on full-mission Planck observations of temperature and polarization anisotropies of the CMB, which are consistent with the six-parameter inflationary LCDM cosmology.
Abstract
We present results based on full-mission Planck observations of temperature and polarization anisotropies of the CMB. These data are consistent with the six-parameter inflationary LCDM cosmology. From the Planck temperature and lensing data, for this cosmology we find a Hubble constant, H0= (67.8 +/- 0.9) km/s/Mpc, a matter density parameter Omega_m = 0.308 +/- 0.012 and a scalar spectral index with n_s = 0.968 +/- 0.006. (We quote 68% errors on measured parameters and 95% limits on other parameters.) Combined with Planck temperature and lensing data, Planck LFI polarization measurements lead to a reionization optical depth of tau = 0.066 +/- 0.016. Combining Planck with other astrophysical data we find N_ eff = 3.15 +/- 0.23 for the effective number of relativistic degrees of freedom and the sum of neutrino masses is constrained to < 0.23 eV. Spatial curvature is found to be |Omega_K| < 0.005. For LCDM we find a limit on the tensor-to-scalar ratio of r <0.11 consistent with the B-mode constraints from an analysis of BICEP2, Keck Array, and Planck (BKP) data. Adding the BKP data leads to a tighter constraint of r < 0.09. We find no evidence for isocurvature perturbations or cosmic defects. The equation of state of dark energy is constrained to w = -1.006 +/- 0.045. Standard big bang nucleosynthesis predictions for the Planck LCDM cosmology are in excellent agreement with observations. We investigate annihilating dark matter and deviations from standard recombination, finding no evidence for new physics. The Planck results for base LCDM are in agreement with BAO data and with the JLA SNe sample. However the amplitude of the fluctuations is found to be higher than inferred from rich cluster counts and weak gravitational lensing. Apart from these tensions, the base LCDM cosmology provides an excellent description of the Planck CMB observations and many other astrophysical data sets.

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Journal ArticleDOI

Planck 2015 results - XIII. Cosmological parameters

Peter A. R. Ade, +337 more
TL;DR: In this article, the authors present a cosmological analysis based on full-mission Planck observations of temperature and polarization anisotropies of the cosmic microwave background (CMB) radiation.
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GW170817: observation of gravitational waves from a binary neutron star inspiral

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TL;DR: The association of GRB 170817A, detected by Fermi-GBM 1.7 s after the coalescence, corroborates the hypothesis of a neutron star merger and provides the first direct evidence of a link between these mergers and short γ-ray bursts.
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Planck 2018 results. VI. Cosmological parameters

Nabila Aghanim, +232 more
TL;DR: In this article, the authors present cosmological parameter results from the full-mission Planck measurements of the cosmic microwave background (CMB) anisotropies, combining information from the temperature and polarization maps and the lensing reconstruction.
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The Astropy Project: Building an Open-science Project and Status of the v2.0 Core Package

Adrian M. Price-Whelan, +138 more
TL;DR: The Astropy project as discussed by the authors is a Python project supporting the development of open-source and openly developed Python packages that provide commonly needed functionality to the astronomical community, including the core package astropy.
Journal ArticleDOI

Planck 2015 results. XX. Constraints on inflation

TL;DR: In this article, the authors report on the implications for cosmic inflation of the 2018 Release of the Planck CMB anisotropy measurements, which are fully consistent with the two previous Planck cosmological releases, but have smaller uncertainties thanks to improvements in the characterization of polarization at low and high multipoles.
References
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Neutrino Mixing and Cosmology

TL;DR: In this paper, the consequences of neutrino mixing in the early universe have been studied for both active-sterile mixing or mixing between three active neutrinos only, depending crucially upon the size of the universe's lepton number.
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How accurately can we measure the hydrogen 2S->1S transition rate from the cosmological data?

TL;DR: In this article, the accuracy of cosmological determination of the two-quanta decay rate of 2s hydrogen atom state was investigated considering the PLANCK data, and it was shown that using this data will allow us to measure this decay rate significantly better than in the laboratory experiments.
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Induced two-photon decay of the 2s level and the rate of cosmological hydrogen recombination

TL;DR: In this paper, the authors considered the effect of soft CMB photons on the two-photon decay rate of the 2s level of hydrogen, defining the rate of cosmological recombination and the degree of ionization, the visibility function and the resulting primordial temperature anisotropies and polarization of the CMB on the percent level.
Journal ArticleDOI

Spectral distortions to the Cosmic Microwave Background from the recombination of hydrogen and helium

TL;DR: In this paper, the authors presented a detailed calculation of the line intensities arising from the Ly-alpha and two-photon (2s-1s) transitions for the recombination of hydrogen, as well as the corresponding lines from helium.
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