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MILCANN : A neural network assessed tSZ map for galaxy cluster detection

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arxiv 1702.00075 v2 pith:I4T7RGZX submitted 2017-01-31 astro-ph.CO

classification astro-ph.CO
keywords catalogmilcannassessmentcandidatesclustercombinationgalaxyneural
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abstract

We present the first combination of thermal Sunyaev-Zel'dovich (tSZ) map with a multi-frequency quality assessment of the sky pixels based on Artificial Neural Networks (ANN) aiming at detecting tSZ sources from sub-millimeter observations of the sky by Planck. We construct an adapted full-sky ANN assessment on the fullsky and we present the construction of the resulting filtered and cleaned tSZ map, MILCANN. We show that this combination allows to significantly reduce the noise fluctuations and foreground residuals compared to standard tSZ maps. From the MILCANN map, we constructed the HAD tSZ source catalog that consists of 3969 sources with a purity of 90\%. Finally, We compare this catalog with ancillary catalogs and show that the galaxy-cluster candidates in the HAD catalog are essentially low-mass (down to $M_{500} = 10^{14}$ M$_\odot$) high-redshift (up to $z \leq 1$) galaxy cluster candidates.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Probing Cosmology and Cluster Astrophysics with Multi-Wavelength Surveys I. Correlation Statistics

    astro-ph.CO 2019-09 conditional novelty 6.0 of 10

    A joint analysis of tSZ, X-ray, and weak lensing power spectra could constrain dark energy to 8% and measure cluster gas physics in upcoming surveys.

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