Systematic Effects in Interferometric Observations of the CMB Polarization
Abstract
The detection of the primordial -mode spectrum of the polarized cosmic microwave background (CMB) signal may provide a probe of inflation. However, observation of such a faint signal requires excellent control of systematic errors. Interferometry proves to be a promising approach for overcoming such a challenge. In this paper we present a complete simulation pipeline of interferometric observations of CMB polarization, including systematic errors. We employ two different methods for obtaining the power spectra from mock data produced by simulated observations: the maximum likelihood method and the method of Gibbs sampling. We show that the results from both methods are consistent with each other, as well as, within a factor of 6, with analytical estimates. Several categories of systematic errors are considered: instrumental errors, consisting of antenna gain and antenna coupling errors, and beam errors, consisting of antenna pointing errors, beam cross-polarization and beam shape (and size) errors. In order to recover the tensor-to-scalar ratio, , within a 10% tolerance level, which ensures the experiment is sensitive enough to detect the -signal at in the multipole range , we find that, for a QUBIC-like experiment, Gaussian-distributed systematic errors must be controlled with precisions of for antenna gain, for antenna coupling, for pointing, for beam shape, and for beam cross-polarization.
Keywords
Cite
@article{arxiv.1302.6608,
title = {Systematic Effects in Interferometric Observations of the CMB Polarization},
author = {Ata Karakci and Le Zhang and P. M. Sutter and Emory F. Bunn and Andrei Korotkov and Peter Timbie and Gregory S. Tucker and Benjamin D. Wandelt},
journal= {arXiv preprint arXiv:1302.6608},
year = {2015}
}
Comments
15 pages, 6 figures, submitted to ApJS