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      Semi-blind Bayesian inference of CMB map and power spectrum

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          Abstract

          We present a new blind formulation of the Cosmic Microwave Background (CMB) inference problem. The approach relies on a phenomenological model of the multi-frequency microwave sky without the need for physical models of the individual components. For all-sky and high resolution data, it unifies parts of the analysis that have previously been treated separately, such as component separation and power spectrum inference. We describe an efficient sampling scheme that fully explores the component separation uncertainties on the inferred CMB products such as maps and/or power spectra. External information about individual components can be incorporated as a prior giving a flexible way to progressively and continuously introduce physical component separation from a maximally blind approach. We connect our Bayesian formalism to existing approaches such as Commander, SMICA and ILC, and discuss possible future extensions.

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          Author and article information

          Journal
          02 September 2014
          Article
          10.1051/0004-6361/201424890
          1409.0858
          6b12c97a-63f8-4d02-9d00-413c52f52b1b

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

          History
          Custom metadata
          A&A 588, A113 (2016)
          11 pages, 9 figures
          astro-ph.CO

          Cosmology & Extragalactic astrophysics
          Cosmology & Extragalactic astrophysics

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