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arXiv · astro-ph/9507015

Omega from the COBE-DMR anisotropy maps

Abstract

We have made a likelihood statistical analysis of the angular correlations in the {\it COBE}-DMR two-year sky maps by Monte Carlo simulation of the temperature fluctuations. We assume an open universe and consider as primordial power spectrum the Harrison-Zeldovich one, $P(k)=Ak$. We find that the flatness of the universe is not implied by the data. The quadrupole normalization amplitude, $Q_{rms-PS}$, is related to the density parameter, $Ω$, by $Q_{rms-PS} = 10.67 + 55.81 Ω- 128.59 Ω^2 + 81.26 Ω^3\ μ$K. We have determined the p.d.f. of $Ω$ due to cosmic plus sampling (i.e. $20^\circ$ galactic cut) variance which generically shows a bimodal shape. The uncertainty as given by the r.m.s. is $\approx 0.35$, therefore to better constrain $Ω$ experiments sensitive to higher multipoles ($l>20$) should be considered.

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BibTeXRIS

L. Cayon, E. Martinez-Gonzalez, J. L. Sanz, N. Sugiyama, S. Torres. 1995-07-05. Omega from the COBE-DMR anisotropy maps. https://doi.org/10.1093/mnras%2F279.4.1095

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