SILC: a new Planck internal linear combination CMB temperature map using directional wavelets

We present new clean maps of the cosmic microwave background (CMB) temperature anisotropies (as measured by Planck) constructed with a novel internal linear combination (ILC) algorithm using directional, scale-discretized wavelets – scale-discretized, directional wavelet ILC or Scale-discretised, di...

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Veröffentlicht in:Monthly notices of the Royal Astronomical Society 2016-08, Vol.460 (3), p.3014-3028
Hauptverfasser: Rogers, Keir K., Peiris, Hiranya V., Leistedt, Boris, McEwen, Jason D., Pontzen, Andrew
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Sprache:eng
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Zusammenfassung:We present new clean maps of the cosmic microwave background (CMB) temperature anisotropies (as measured by Planck) constructed with a novel internal linear combination (ILC) algorithm using directional, scale-discretized wavelets – scale-discretized, directional wavelet ILC or Scale-discretised, directional wavelet Internal Linear Combination (SILC). Directional wavelets, when convolved with signals on the sphere, can separate the anisotropic filamentary structures which are characteristic of both the CMB and foregrounds. Extending previous component separation methods, which use the frequency, spatial and harmonic signatures of foregrounds to separate them from the cosmological background signal, SILC can additionally use morphological information in the foregrounds and CMB to better localize the cleaning algorithm. We test the method on Planck data and simulations, demonstrating consistency with existing component separation algorithms, and discuss how to optimize the use of morphological information by varying the number of directional wavelets as a function of spatial scale. We find that combining the use of directional and axisymmetric wavelets depending on scale could yield higher quality CMB temperature maps. Our results set the stage for the application of SILC to polarization anisotropies through an extension to spin wavelets.
ISSN:0035-8711
1365-2966
DOI:10.1093/mnras/stw1121