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MaNGIA: 10,000 mock galaxies for stellar population analysis

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arxiv 2211.11790 v1 pith:QLEMO7K4 submitted 2022-11-21 astro-ph.GA

classification astro-ph.GA
keywords galaxiesobservationsstellarmockanalysisgivemangamangia
verification ladder T0 review T1 audit T2 compute T3 formal

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Modern astronomical observations give unprecedented access to the physical properties of nearby galaxies, including spatially resolved stellar populations. However, observations can only give a present-day view of the Universe, whereas cosmological simulations give access to the past record of the processes that galaxies have experienced in their evolution. To connect the events that happened in the past with galactic properties as seen today, simulations must be taken to a common ground before being compared to observations. We emulate data from the MaNGA survey, which is the largest integral field spectroscopic galaxy survey to date with its 10,000 nearby galaxies of all types. For this, we use the cosmological simulations TNG50 to generate MaNGIA (Mapping Nearby Galaxies with IllustrisTNG Astrophysics), a mock MaNGA sample of similar size that emulates observations of galaxies for stellar population analysis. We choose TNG galaxies to match the MaNGA sample selection to limit the impact of selection effects. We produce MaNGA-like datacubes from all simulated galaxies, and process these with the pyPipe3D analysis code. This allows us to extract spatially resolved stellar maps. This first paper presents the approach to generate the mock sample and provides an initial exploration of its properties. We show that the stellar populations and kinematics of the simulated MaNGIA galaxies are overall in good agreement with observations. Specific discrepancies, especially in the age and metallicity gradients in low- to intermediate-mass regimes and in massive galaxies' kinematics, require further investigation. We compare our results to other attempts to mock similar observations, all of smaller data sets. Our final dataset will be released with the publication, consisting of >10,000 post-processed data-cubes analysed with pyPipe3D, along with the codes developed to create it.

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Forward citations

Cited by 2 Pith papers

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

  1. What's Missing in AGN Feedback? Lessons learnt from Magneticum, IllustrisTNG and Simba

    astro-ph.GA 2026-07 conditional novelty 6.0 of 10

    No current simulation simultaneously reproduces observed halo hot-gas fractions and local galaxy star-formation/quenching demographics; strong AGN feedback overquenches, weak feedback retains too much gas.

  2. The SDSS-V Local Volume Mapper (LVM): Data Analysis Pipeline

    astro-ph.IM 2024-11 conditional novelty 5.0 of 10

    The LVM-DAP recovers gas emission-line fluxes and kinematics with claimed survey-grade accuracy, but its stellar parameter estimates are reliable only for single stars and biased for mixed stellar populations.

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