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arXiv · astro-ph/9512140

A Fast and Accurate Algorithm for Computing Tensor CBR Anisotropy

Abstract

Inflation gives rise to a nearly scale-invariant spectrum of tensor perturbations (gravitational waves), their contribution to the Cosmic Background Radiation (CBR) anisotropy depends upon the present cosmological parameters as well as inflationary parameters. The analysis of a sampling-variance-limited CBR map offers the most promising means of detecting tensor perturbations, but will require evaluation of the predicted multipole spectrum for a very large number of cosmological parameter sets. We present accurate polynomial formulae for computing the predicted variance of the multipole moments in terms of the cosmological parameters $Ω_Λ$, $Ω_0h^2$, $Ω_B h^2$, $N_ν$, and the power-law index $n_T$ which are accurate to about 1\% for $l\le 50$ and to better than 3\% for $50< l \le 100$ (as compared to the numerical results of a Boltzmann code).

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BibTeXRIS

Michael S. Turner, Yun Wang. 1995-12-20. A Fast and Accurate Algorithm for Computing Tensor CBR Anisotropy. https://doi.org/10.1103/physrevd.53.5727

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