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Peeling off foregrounds with the constrained moment ILC method to unveil primordial CMB B-modes

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arxiv 2006.08628 v2 pith:N4HF73OB submitted 2020-06-15 astro-ph.CO

Peeling off foregrounds with the constrained moment ILC method to unveil primordial CMB B-modes

classification astro-ph.CO
keywords methodforegroundforegroundsgalacticmodemomentseveralanalysis
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Galactic foregrounds are the main obstacle to observations of the cosmic microwave background (CMB) $B$-mode polarization. In addition to obscuring the inflationary $B$-mode signal by several orders of magnitude, Galactic foregrounds have non-trivial spectral signatures that are partially unknown and distorted by averaging effects along the line-of-sight, within the pixel/beam window, and by various analysis choices (e.g., spherical harmonic transforms and filters). Statistical moment expansion methods provide a powerful tool for modeling the effective Galactic foreground emission resulting from these averaging effects in CMB observations, while blind component separation treatments can handle unknown foregrounds. In this work, we combine these two approaches to develop a new semi-blind component separation method at the intersection of parametric and blind methods, called constrained moment ILC (cMILC). This method adds several constraints to the standard ILC method to de-project the main statistical moments of the Galactic foreground emission. Applications to maps are performed in needlet space and when compared to the NILC method, this helps significantly reducing residual foreground contamination (bias, variance, and skewness) in the reconstructed CMB $B$-mode map, power spectrum, and tensor-to-scalar ratio. We consider sky-simulations for experimental settings similar to those of LiteBIRD and PICO, illustrating which trade-offs between residual foreground biases and degradation of the constraint on $r$ can be expected within the new cMILC framework. We also outline several directions that require more work in preparation for the coming analysis challenges.

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Cited by 5 Pith papers

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  2. Enhanced foreground mitigation in thermal SZ Compton-$y$ maps via polarization and deprojection

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    Combining temperature and polarization in a needlet ILC cuts residual Galactic contamination in the Planck thermal SZ y-map by about 40% (IRAS cross-correlation), with larger projected gains for future low-noise surveys.

  3. Simultaneous inference of isotropic and anisotropic polarization rotation angles for next-generation cosmic microwave background experiments

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    A Bayesian power-spectrum framework simultaneously infers isotropic and anisotropic cosmic birefringence angles, instrumental miscalibration angles, and foreground parameters from simulated multi-frequency next-genera...

  4. Blind mitigation of foreground-induced biases on primordial $B$ modes for ground-based CMB experiments

    astro-ph.CO 2026-03 unverdicted novelty 5.0

    Two NILC extensions—one deprojecting foreground moments and one marginalizing residuals at the likelihood level—yield unbiased r estimates and consistent lensing B-mode reconstruction in SO-SAT-like simulations.

  5. BROOM: a python package for model-independent analysis of microwave astronomical data

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    BROOM is a Python package that applies ILC and GILC techniques for model-independent separation of CMB, SZ, and foreground signals in microwave data along with diagnostic and simulation utilities.