DSPS: Differentiable stellar population synthesis

Author:

Hearin Andrew P1ORCID,Chaves-Montero Jonás123ORCID,Alarcon Alex1ORCID,Becker Matthew R1ORCID,Benson Andrew4ORCID

Affiliation:

1. HEP Division, Argonne National Laboratory , 9700 South Cass Avenue, Lemont, IL 60439, USA

2. Donostia International Physics Centre , Paseo Manuel de Lardizabal 4, E-20018 Donostia-San Sebastian, Spain

3. Institut de Física d’Altes Energies, The Barcelona Institute of Science and Technology , Campus UAB, E-08193 Bellaterra (Barcelona), Spain

4. Carnegie Observatories , 813 Santa Barbara Street, Pasadena, CA 91101, USA

Abstract

ABSTRACT Models of stellar population synthesis (SPS) are the fundamental tool that relates the physical properties of a galaxy to its spectral energy distribution (SED). In this paper, we present DSPS: a python package for SPS. All of the functionality in DSPS is implemented natively in the JAX library for automatic differentiation, and so our predictions for galaxy photometry are fully differentiable, and directly inherit the performance benefits of JAX, including portability onto GPUs. DSPS also implements several novel features, such as i) a flexible empirical model for stellar metallicity that incorporates correlations with stellar age, ii) support for the Diffstar model that provides a physically-motivated connection between the star formation history of a galaxy (SFH) and the mass assembly of its underlying dark matter halo. We detail a set of theoretical techniques for using autodiff to calculate gradients of predictions for galaxy SEDs with respect to SPS parameters that control a range of physical effects, including SFH, stellar metallicity, nebular emission, and dust attenuation. When forward modelling the colours of a synthetic galaxy population, we find that DSPS can provide a factor of 5 speed-up over standard SPS codes on a CPU, and a factor of 300-400 on a modern GPU. When coupled with gradient-based techniques for optimization and inference, DSPS makes it practical to conduct expansive likelihood analyses of simulation-based models of the galaxy–halo connection that fully forward model galaxy spectra and photometry.

Funder

DOE

National Science Foundation

NASA

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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