How DREAMS are made: Emulating Satellite Galaxy and Subhalo Populations with Diffusion Models and Point Clouds
Tri Nguyen, Francisco Villaescusa-Navarro, Siddharth Mishra-Sharma,, Carolina Cuesta-Lazaro, Paul Torrey, Arya Farahi, Alex M. Garcia, Jonah C., Rose, Stephanie O'Neil, Mark Vogelsberger, Xuejian Shen, Cian Roche, Daniel, Angl\'es-Alc\'azar, Nitya Kallivayalil, Julian B. Mu\~noz

TL;DR
This paper introduces NeHOD, a diffusion-based generative model that accurately simulates galaxy and subhalo populations as point clouds, bridging the gap between hydrodynamic accuracy and HOD efficiency.
Contribution
NeHOD is a novel framework combining diffusion models and Transformers to generate detailed galaxy/subhalo distributions with high accuracy at low computational cost.
Findings
NeHOD accurately reproduces galaxy and subhalo properties.
The model captures complex relationships across simulation parameters.
NeHOD enables efficient large-scale galaxy modeling for cosmology.
Abstract
The connection between galaxies and their host dark matter (DM) halos is critical to our understanding of cosmology, galaxy formation, and DM physics. To maximize the return of upcoming cosmological surveys, we need an accurate way to model this complex relationship. Many techniques have been developed to model this connection, from Halo Occupation Distribution (HOD) to empirical and semi-analytic models to hydrodynamic. Hydrodynamic simulations can incorporate more detailed astrophysical processes but are computationally expensive; HODs, on the other hand, are computationally cheap but have limited accuracy. In this work, we present NeHOD, a generative framework based on variational diffusion model and Transformer, for painting galaxies/subhalos on top of DM with an accuracy of hydrodynamic simulations but at a computational cost similar to HOD. By modeling galaxies/subhalos as point…
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Taxonomy
TopicsInsurance, Mortality, Demography, Risk Management · Geochemistry and Geologic Mapping
MethodsByte Pair Encoding · Absolute Position Encodings · Softmax · Label Smoothing · Linear Layer · Adam · Dropout · Diffusion · Layer Normalization · Dense Connections
