2020/09/30 by Bryan Ostdiek, Ana Díaz Rivero, Ana Diaz Rivero +1 · 29 citations
Physics and Astronomy · #Artificial intelligence #Astronomy and Astrophysical Research #Astrophysics #Computer science #Einstein ring #Galaxies: Formation, Evolution, Phenomena #Galaxy #Gamma-ray bursts and supernovae #Gravitational lens #Halo #Image (mathematics) #Lens (geology) #Optics #Physics #Pixel #Segmentation #Strong gravitational lensing #Substructure #astro-ph.CO #astro-ph.IM #hep-ph #physics.data-an
paper · pdf · doi:10.1051/0004-6361/202142030
published in Astronomy and Astrophysics 657, L14 (EDP Sciences) · v1: 5 + 3 pages, 3 figures. v2: matches accepted version in A&A Letters. 5+2 pages; 3+1 figures
openalex publication_date 2022/01/01 · arxiv created 2022/01/26 · arxiv updated 2022/01/27 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05
Aims. The goal of this Letter is to develop a machine learning model to analyze the main gravitational lens and detect dark substructure (subhalos) within simulated images of strongly lensed galaxies. Methods. Using the technique of image segmentation, we turn the task of identifying subhalos into a classification problem, where we label each pixel in an image as coming from the main lens, a subhalo within a binned mass range, or neither. Our network is only trained on images with a single smooth lens and either zero or one subhalo near the Einstein ring. Results. On an independent test set with lenses with large ellipticities, quadrupole and octopole moments, and for source apparent magnitudes between 17−25, the area of the main lens is recovered accurately. On average, only 1.3% of the true area is missed and 1.2% of the true area is added to another part of the lens. In addition, subhalos as light as 10 8.5 M ⊙ can be detected if they lie in bright pixels along the Einstein ring. Furthermore, the model is able to generalize to new contexts it has not been trained on, such as locating multiple subhalos with varying masses or more than one large smooth lens.