Multiple-component Decomposition from Millimeter Single-channel Data

  • Rodríguez-Montoya I
  • Sánchez-Argüelles D
  • Aretxaga I
  • et al.
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Abstract

We present an implementation of a blind source separation algorithm to remove foregrounds off millimeter surveys made by single-channel instruments. In order to make possible such a decomposition over single-wavelength data, we generate levels of artificial redundancy, then perform a blind decomposition, calibrate the resulting maps, and lastly measure physical information. We simulate the reduction pipeline using mock data: atmospheric fluctuations, extended astrophysical foregrounds, and point-like sources, but we apply the same methodology to the Aztronomical Thermal Emission Camera/ASTE survey of the Great Observatories Origins Deep Survey–South (GOODS-S). In both applications, our technique robustly decomposes redundant maps into their underlying components, reducing flux bias, improving signal-to-noise ratio, and minimizing information loss. In particular, GOODS-S is decomposed into four independent physical components: one of them is the already-known map of point sources, two are atmospheric and systematic foregrounds, and the fourth component is an extended emission that can be interpreted as the confusion background of faint sources.

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APA

Rodríguez-Montoya, I., Sánchez-Argüelles, D., Aretxaga, I., Bertone, E., Chávez-Dagostino, M., Hughes, D. H., … Zeballos, M. (2018). Multiple-component Decomposition from Millimeter Single-channel Data. The Astrophysical Journal Supplement Series, 235(1), 12. https://doi.org/10.3847/1538-4365/aaa83c

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