2021
DOI: 10.48550/arxiv.2111.14446
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Decomposition of stellar populations in CosmoDC2 galaxies using SCARLET and Deep Learning

Sándor Kunsági-Máté,
István Csabai

Abstract: We are presenting a novel, Deep Learning based approach to estimate the normalized broadband spectral energy distribution (SED) of different stellar populations in synthetic galaxies. In contrast to the non-parametric multiband source separation algorithm, SCARLET -where the SED and morphology are simultaneously fitted -in our study we provide a morphologyindependent, statistical determination of the SEDs, where we only use the color distribution of the galaxy. We developed a neural network (sedNN) that accura… Show more

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