Machine Learning the Dark Matter Halo Mass of Milky Way-Like Systems
arXiv:2309.06476 · doi:10.33232/001c.116178
Abstract
Despite the Milky Way's proximity to us, our knowledge of its dark matter halo is fairly limited, and there is still considerable uncertainty in its halo mass. Many past techniques have been limited by assumptions such as the Galaxy being in dynamical equilibrium as well as nearby galaxies being true satellites of the Galaxy, and/or the need to find large samples of Milky Way analogs in simulations.Here, we propose a new technique based on neural networks that obtains high precision ( dex mass uncertainty) without assuming halo dynamical equilibrium or that neighboring galaxies are all satellites, and which can use information from a wide variety of simulated halos (even those dissimilar to the Milky Way) to improve its performance. This method uses only observable information including satellite orbits, distances to nearby larger halos, and the maximum circular velocity of the largest satellite galaxy. In this paper, we demonstrate a proof-of-concept method on simulated dark matter halos; in future papers in this series, we will apply neural networks to estimate the masses of the Milky Way's and M31's dark matter halos, and we will train variations of these networks to estimate other halo properties including concentration, assembly history, and spin axis.
References in corpus (18)
- The mass distribution and gravitational potential of the Milky Way
- The Milky Way's Circular Velocity Curve to 60 kpc and an Estimate of the Dark Matter Halo Mass from Kinematics of ~2400 SDSS Blue Horizontal Branch Stars
- The RAVE Survey: Constraining the Local Galactic Escape Speed
- The M31 Velocity Vector. II. Radial Orbit Towards the Milky Way and Implied Local Group Mass
- "Skinny Milky Way, Please", says Sagittarius
- The Mass Profile of the Galaxy to 80 kpc
- Gaia early DR3 systemic motions of Local Group dwarf galaxies and orbital properties with a massive Large Magellanic Cloud
- The velocity dispersion and mass profile of the Milky Way
- The Space Motion of Leo I: Hubble Space Telescope Proper Motion and Implied Orbit
- The local high velocity tail and the Galactic escape speed
- Open Clusters as Galactic Disk Tracers: I. Project Motivation, Cluster Membership and Bulk Three-Dimensional Kinematics
- Milky Way mass constraints from the Galactic satellite gap
- The effects of dynamical substructure on Milky Way mass estimates from the high velocity tail of the local stellar halo
- Creating mock catalogues of stellar haloes from cosmological simulations
- Implications of the Milky Way travel velocity for dynamical mass estimates of the Local Group
- Evidence for a Massive Andromeda Galaxy Using Satellite Galaxy Proper Motions
- Local Group Analogs in CDM cosmological simulations
- Semi-Supervised Domain Adaptation for Cross-Survey Galaxy Morphology Classification and Anomaly Detection