English

Cosmological Constraints from the Cosmic Microwave Background

Astrophysics 2011-05-23 v2

Abstract

Using an approximate likelihood method adapted to band--power estimates, we analyze the ensemble of first generation cosmic microwave background anisotropy experiments to deduce constraints over a six--dimensional parameter space describing Inflation--generated adiabatic, scalar fluctuations. The basic preferences of simple Inflation scenarios are consistent with the data set: flat geometries (\OmT1\Omk1)(\OmT \equiv 1-\Omk \sim 1) and a scale--invariant primeval spectrum (n1n\sim 1) are favored. Models with significant negative curvature (\OmT<0.7\OmT < 0.7) are eliminated, while constraints on postive curvature are less stringent. Degeneracies among the parameters prevent independent determinations of the matter density \OmM\OmM and the cosmological constant Λ\Lambda, and the Hubble constant \Ho\Ho remains relatively unconstrained. We also find that the height of the first Doppler peak relative to the amplitude suggested by data at larger ll indicates a high baryon content (\Ombh2\Omb h^2), almost independently of the other parameters. Besides the overall qualitative advance expected of the next generation experiments, their improved dipole calibrations will be particularly useful for constraining the peak height. Our analysis includes a {\em Goodness--of--Fit} statistic applicable to power estimates and which indicates that the maximum likelihood model provides an acceptable fit to the data set.

Keywords

Cite

@article{arxiv.astro-ph/0004282,
  title  = {Cosmological Constraints from the Cosmic Microwave Background},
  author = {M. Le Dour and M. Douspis and J. G. Bartlett and A. Blanchard},
  journal= {arXiv preprint arXiv:astro-ph/0004282},
  year   = {2011}
}

Comments

Published version; minor changes with respect to previous version

R2 v1 2026-07-22T07:46:12.416Z