Some observational tests of a minimal galaxy formation model
arXiv:1609.03956 · doi:10.1093/mnras/stw3202
Abstract
Dark matter simulations can serve as a basis for creating galaxy histories via the galaxy-dark matter connection. Here, one such model by Becker (2015) is implemented with several variations on three different dark matter simulations. Stellar mass and star formation rates are assigned to all simulation subhalos at all times, using subhalo mass gain to determine stellar mass gain. The observational properties of the resulting galaxy distributions are compared to each other and observations for a range of redshifts from 0-2. Although many of the galaxy distributions seem reasonable, there are noticeable differences as simulations, subhalo mass gain definitions, or subhalo mass definitions are altered, suggesting that the model should change as these properties are varied. Agreement with observations may improve by including redshift dependence in the added-by-hand random contribution to star formation rate. There appears to be an excess of faint quiescent galaxies as well (perhaps due in part to differing definitions of quiescence). The ensemble of galaxy formation histories for these models tend to have more scatter around their average histories (for a fixed final stellar mass) than the two more predictive and elaborate semi-analytic models of Guo et al (2013) and Henriques et al (2015), and require more basis fluctuations (using PCA) to capture 90 percent of the scatter around their average histories. The codes to plot model predictions (in some cases alongside observational data) are publicly available to test other mock catalogues at https://github.com/jdcphysics/validation . Information on how to use these codes is in the appendix.
Paper also serves as documentation for public code validating mock catalogues which have M*, star formation rates, stellar mass to halo mass information (redshifts 0 to ~ 4, most data sets for 0 to 2)
References in corpus (16)
- Cosmic Star Formation History
- The propagation of uncertainties in stellar population synthesis modeling I: The relevance of uncertain aspects of stellar evolution and the IMF to the derived physical properties of galaxies
- K-corrections and filter transformations in the ultraviolet, optical, and near infrared
- A Highly Consistent Framework for the Evolution of the Star-Forming "Main Sequence" from z~0-6
- An ultra-deep near-infrared spectrum of a compact quiescent galaxy at z=2.2
- The stellar mass assembly of galaxies from z=0 to z=4. Analysis of a sample selected in the rest-frame near-infrared with Spitzer
- PRIMUS: Constraints on Star Formation Quenching and Galaxy Merging, and the Evolution of the Stellar Mass Function From z=0-1
- A primer on hierarchical galaxy formation: the semi-analytical approach
- On the Lack of Evolution in Galaxy Star Formation Efficiency
- The FourStar Galaxy Evolution Survey (ZFOURGE): ultraviolet to far-infrared catalogs, medium-bandwidth photometric redshifts with improved accuracy, stellar masses, and confirmation of quiescent galaxies to z~3.5
- The evolution of star formation histories of quiescent galaxies
- Early supersymmetric cold dark matter substructure
- Modelling and interpreting the dependence of clustering on the spectral energy distributions of galaxies
- Star Formation and Stellar Mass Assembly in Dark Matter Halos: From Giants to Dwarfs
- Connecting Galaxies with Halos Across Cosmic Time: Stellar mass assembly distribution modeling of galaxy statistics
- Characterizing simulated galaxy stellar mass histories