BeyondPlanck X. Bandpass and beam leakage corrections
T. L. Svalheim, 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, S. Galeotta, M. Galloway, S. Gerakakis,, E. Gjerl{\o}w, B. Hensley, D. Herman, M. Iacobellis

TL;DR
This paper enhances the Bayesian BeyondPlanck CMB analysis by refining bandpass and beam leakage corrections, leading to improved data accuracy and reduced systematic effects in Planck LFI measurements.
Contribution
It introduces a new method for fitting bandpass corrections directly within the Bayesian analysis, including absolute and relative shifts, and incorporates beam leakage correction for the first time in Planck LFI data.
Findings
Bandpass corrections shift the 70 GHz bandpass by +0.6 GHz.
Fitted a single free bandpass parameter per radiometer.
Beam leakage from beam mismatch is now included in Planck LFI maps.
Abstract
We discuss the treatment of bandpass and beam leakage corrections in the Bayesian BeyondPlanck CMB analysis pipeline as applied to the Planck LFI measurements. As a preparatory step, we first apply three corrections to the nominal LFI bandpass profiles including removal of a known systematic effect in the ground measuring equipment at 61 GHz; smoothing of standing wave ripples; and edge regularization. The main net impact of these modifications is an overall shift in the 70 GHz bandpass of +0.6 GHz; we argue that any analysis of LFI data products, either from Planck or BeyondPlanck, should use these new bandpasses. In addition, we fit a single free bandpass parameter for each radiometer of the form , where represents an absolute frequency shift per frequency band and is a relative shift per detector. The absolute correction is only…
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Taxonomy
TopicsIntegrated Circuits and Semiconductor Failure Analysis · Advancements in Photolithography Techniques · Particle Accelerators and Free-Electron Lasers
