CMB-S4: Foreground-cleaning Pipeline Comparison for Measuring Primordial Gravitational Waves
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Abstract
We compare multiple foreground-cleaning pipelines for estimating the tensor-to-scalar ratio, r, using simulated maps of the planned CMB-S4 experiment within the context of the South Pole Deep Patch. To evaluate robustness, we analyze bias and uncertainty on r across various foreground suites using map-based simulations. The foreground-cleaning methods include: a parametric maximum likelihood approach applied to auto- and cross-power spectra between frequency maps; a map-based parametric maximum-likelihood method; and a harmonic-space internal linear combination using frequency maps. We summarize the conceptual basis of each method to highlight their similarities and differences. To better probe the impact of foreground residuals, we implement an iterative internal delensing step, leveraging a map-based pipeline to generate a lensing B-mode template from the large aperture telescope frequency maps. Our results show that the performance of the three approaches is comparable for simple and intermediate-complexity foregrounds, with σ(r) ranging from 3–5 ×10−4. However, biases at the 1σ–2σ level appear when analyzing more complex forms of foreground emission. By extending the baseline pipelines to marginalize over foreground residuals, we demonstrate that contamination can be reduced to within statistical uncertainties, albeit with a pipeline-dependent impact on σ(r), which translates to a detection significance between 2σ and 4σ for an input value of r = 0.003. These findings suggest varying levels of maturity among the tested pipelines, with the auto- and cross-spectra-based approach demonstrating the best stability and overall performance. Moreover, given the extremely low noise levels, mutual validation of independent foreground-cleaning pipelines is essential to ensure the robustness of any potential detection.
Copyright and License
© 2025. The Author(s). Published by the American Astronomical Society. Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
Acknowledgement
We would like to thank Carlo Baccigalupi, Aurelien Fraisse, Carlos Herv’as-Caimapo, Sunguen Kim, Bruce Partridge, Giuseppe Puglisi, Douglas Scott, Ahmed Soliman, Raked Stompor, Matthieu Tristram, Sarvesh Kumar Yadav, and members of the CMB-S4 low-ell BB analysis working group for providing comments and feedback to this work. CMB-S4 is supported by the Director, Office of Science, Office of High Energy Physics of the U.S. Department of Energy under contract No. DE- AC02–05CH11231; by the National Energy Research Scientific Computing Center, a DOE Office of Science User Facility under the same contract; and by the Divisions of Physics and Astronomical Sciences and the Office of Polar Programs of the U.S. National Science Foundation under Mid-Scale Research Infrastructure award OPP–1935892. This work used the resources of the SLAC Shared Science Data Facility (S3DF) at SLAC National Accelerator Laboratory. S3DF is a shared High-Performance Computing facility, operated by SLAC, that supports the scientific and data-intensive computing needs of all experimental facilities and programs of the SLAC National Accelerator Laboratory. The SLAC authors acknowledge support by the Department of Energy, contract DE-AC02–76SF00515. W.L.K.W. is supported in part by the Department of Energy, Laboratory Directed Research and Development program and as part of the Panofsky Fellowship program at SLAC National Accelerator Laboratory. J.C. and S.B. acknowledge support from an SNSF Eccellenza Professorial Fellowship (No. 186879). The research was carried out in part at the Jet Propulsion Laboratory, California Institute of Technology, under a contract with the National Aeronautics and Space Administration (80NM0018D0004).
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Bianchini_2025_ApJ_993_105.pdf
Additional details
Related works
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- Discussion Paper: arXiv:2502.04300 (arXiv)
Funding
- United States Department of Energy
- DE-AC02-05CH11231
- National Science Foundation
- OPP-1935892
- United States Department of Energy
- DE-AC02-76SF00515
- SLAC National Accelerator Laboratory
- Swiss National Science Foundation
- 186879
- National Aeronautics and Space Administration
- 80NM0018D0004
Dates
- Accepted
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2025-09-03
- Available
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2025-10-28Published
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- Caltech groups
- Division of Physics, Mathematics and Astronomy (PMA)
- Publication Status
- Published