Robust CMB B-mode analysis with Needlet-ILC and simulation-based inference

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Duivenvoorden, Adriaan J., Surrao, Kristen, Bayer, Adrian E., Adler, Alexandre E., Dachlythra, Nadia, Azzoni, Susanna, Hill, J. Colin
Natura: Preprint
Pubblicazione: 2025
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866914208124239872
author Duivenvoorden, Adriaan J.
Surrao, Kristen
Bayer, Adrian E.
Adler, Alexandre E.
Dachlythra, Nadia
Azzoni, Susanna
Hill, J. Colin
author_facet Duivenvoorden, Adriaan J.
Surrao, Kristen
Bayer, Adrian E.
Adler, Alexandre E.
Dachlythra, Nadia
Azzoni, Susanna
Hill, J. Colin
contents We explore a novel analysis framework for parameter inference with large-scale CMB polarization data. Our method uses simulation-based inference combined with the needlet internal linear combination (NILC) algorithm and cross-correlation-based statistics to compress the data into a vector that is robust to model misspecification and small enough to be amenable to neural posterior estimation with normalizing flows. By leveraging this compressed data representation, our method enables the robust use of the anisotropic and non-Gaussian information in the foreground fields to more accurately separate the CMB polarization signal from these contaminants. Using an idealized ground-based experimental setup inspired by the Simons Observatory Small Aperture Telescopes, we demonstrate improved statistical constraining power for the tensor-to-scalar ratio $r$ compared to the (constrained) NILC algorithm and improved robustness to complex foregrounds compared to other techniques in the literature. Trained on a relatively simple semi-analytical foreground model, the method yields unbiased $r$ results across a range of PySM Galactic foreground simulations, including the high-complexity d12 model, for which we obtain $r=(1.09 \pm 0.27)\cdot 10^{-2}$ for input $r=0.01$ and sky fraction $f_{\mathrm{sky}} = 0.21$. We thus demonstrate the feasibility and advantages of a complete, maps-to-parameters, simulation-based analysis of large-scale CMB polarization for current ground-based observatories.
format Preprint
id arxiv_https___arxiv_org_abs_2512_16869
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Robust CMB B-mode analysis with Needlet-ILC and simulation-based inference
Duivenvoorden, Adriaan J.
Surrao, Kristen
Bayer, Adrian E.
Adler, Alexandre E.
Dachlythra, Nadia
Azzoni, Susanna
Hill, J. Colin
Cosmology and Nongalactic Astrophysics
Instrumentation and Methods for Astrophysics
We explore a novel analysis framework for parameter inference with large-scale CMB polarization data. Our method uses simulation-based inference combined with the needlet internal linear combination (NILC) algorithm and cross-correlation-based statistics to compress the data into a vector that is robust to model misspecification and small enough to be amenable to neural posterior estimation with normalizing flows. By leveraging this compressed data representation, our method enables the robust use of the anisotropic and non-Gaussian information in the foreground fields to more accurately separate the CMB polarization signal from these contaminants. Using an idealized ground-based experimental setup inspired by the Simons Observatory Small Aperture Telescopes, we demonstrate improved statistical constraining power for the tensor-to-scalar ratio $r$ compared to the (constrained) NILC algorithm and improved robustness to complex foregrounds compared to other techniques in the literature. Trained on a relatively simple semi-analytical foreground model, the method yields unbiased $r$ results across a range of PySM Galactic foreground simulations, including the high-complexity d12 model, for which we obtain $r=(1.09 \pm 0.27)\cdot 10^{-2}$ for input $r=0.01$ and sky fraction $f_{\mathrm{sky}} = 0.21$. We thus demonstrate the feasibility and advantages of a complete, maps-to-parameters, simulation-based analysis of large-scale CMB polarization for current ground-based observatories.
title Robust CMB B-mode analysis with Needlet-ILC and simulation-based inference
topic Cosmology and Nongalactic Astrophysics
Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2512.16869