BeyondPlanck VII. Bayesian estimation of gain and absolute calibration for CMB experiments
E. Gjerl{\o}w, H. T. Ihle, S. Galeotta, K. J. Andersen, R. Aurlien, R., Banerji, M. Bersanelli, S. Bertocco, M. Brilenkov, M. Carbone, L. P. L., Colombo, H. K. Eriksen, M. K. Foss, C. Franceschet, U. Fuskeland, M., Galloway, S. Gerakakis, B. Hensley, D. Herman, M. Iacobellis

TL;DR
This paper introduces a Bayesian calibration method for CMB data, improving gain estimation accuracy by decomposing gain into multiple components and integrating WMAP data, enhancing inter-frequency consistency.
Contribution
The paper presents a novel Bayesian calibration algorithm for CMB experiments that decomposes gain into orthogonal components and incorporates WMAP data for improved accuracy.
Findings
Achieved gain estimates with deviations within expected error bounds.
Improved inter-frequency consistency compared to previous pipelines.
Successfully integrated WMAP data to break degeneracies.
Abstract
We present a Bayesian calibration algorithm for CMB observations as implemented within the global end-to-end BeyondPlanck (BP) framework, and apply this to the Planck Low Frequency Instrument (LFI) data. Following the most recent Planck analysis, we decompose the full time-dependent gain into a sum of three orthogonal components: One absolute calibration term, common to all detectors; one time-independent term that can vary between detectors; and one time-dependent component that is allowed to vary between one-hour pointing periods. Each term is then sampled conditionally on all other parameters in the global signal model through Gibbs sampling. The absolute calibration is sampled using only the orbital dipole as a reference source, while the two relative gain components are sampled using the full sky signal, including the orbital and Solar CMB dipoles, CMB fluctuations, and foreground…
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Taxonomy
TopicsCosmology and Gravitation Theories · Geophysics and Gravity Measurements · Radio Astronomy Observations and Technology
