Five-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Cosmological Interpretation
E. Komatsu, J. Dunkley, M. R. Nolta, C. L. Bennett, B. Gold, G., Hinshaw, N. Jarosik, D. Larson, M. Limon, L. Page, D. N. Spergel, M. Halpern,, R. S. Hill, A. Kogut, S. S. Meyer, G. S. Tucker, J. L. Weiland, E. Wollack,, E. L. Wright

TL;DR
The 5-year WMAP data strongly support the minimal LCDM cosmological model, constraining inflation, dark energy, neutrinos, and primordial non-Gaussianity with high precision and no significant deviations detected.
Contribution
This paper provides the most comprehensive constraints from WMAP 5-year data on cosmological parameters, inflation physics, dark energy properties, neutrino masses, and non-Gaussianity, refining previous models.
Findings
WMAP data tightly constrain LCDM parameters.
No significant deviations from the minimal model are observed.
Limits on neutrino mass and non-Gaussianity are improved.
Abstract
(Abridged) The WMAP 5-year data strongly limit deviations from the minimal LCDM model. We constrain the physics of inflation via Gaussianity, adiabaticity, the power spectrum shape, gravitational waves, and spatial curvature. We also constrain the properties of dark energy, parity-violation, and neutrinos. We detect no convincing deviations from the minimal model. The parameters of the LCDM model, derived from WMAP combined with the distance measurements from the Type Ia supernovae (SN) and the Baryon Acoustic Oscillations (BAO), are: Omega_b=0.0456+-0.0015, Omega_c=0.228+-0.013, Omega_Lambda=0.726+-0.015, H_0=70.5+-1.3 km/s/Mpc, n_s=0.960+-0.013, tau=0.084+-0.016, and sigma_8=0.812+-0.026. With WMAP+BAO+SN, we find the tensor-to-scalar ratio r<0.22 (95% CL), and n_s>1 is disfavored regardless of r. We obtain tight, simultaneous limits on the (constant) equation of state of dark energy…
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