Exploring two-spin internal linear combinations for the recovery of the CMB polarization
Abstract
We present a methodology to recover cosmic microwave background (CMB) polarization in which the quantity is linearly combined at different frequencies using complex coefficients. This is the most general linear combination of the and Stokes parameters which preserves the physical coherence of the residual contribution on the CMB estimation. The approach is applied to the internal linear combination (ILC) and the internal template fitting (ITF) methodologies. The variance of of the resulting map is minimized to compute the coefficients of the linear combination. One of the key aspects of this procedure is that it serves to account for a global frequency-dependent shift of the polarization phase. Although in the standard case, in which no global E-B transference depending on frequency is expected in the foreground components, minimizing is similar to minimizing and separately (as previous methodologies proceed), multiplying and by different coefficients induces arbitrary changes in the polarization angle and it does not preserve the coherence between the spinorial components. The approach is tested on simulations, obtaining a similar residual level with respect to the one obtained with other implementations of the ILC, and perceiving the polarization rotation of a toy model with the frequency dependence of the Faraday rotation.
Keywords
Cite
@article{arxiv.1601.01515,
title = {Exploring two-spin internal linear combinations for the recovery of the CMB polarization},
author = {R. Fernández-Cobos and A. Marcos-Caballero and P. Vielva and E. Martínez-González and R. B. Barreiro},
journal= {arXiv preprint arXiv:1601.01515},
year = {2016}
}
Comments
14 pages, 8 figures, 2 tables. Accepted for publication in MNRAS