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Impacts of source morphology on the detectability of subhalos in strong lenses

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abstract

We provide an analysis of a convolutional neural network's ability to identify the lensing signal of single dark matter subhalos in strong galaxy-galaxy lenses in the presence of increasingly complex source light morphology. We simulate a balanced dataset of 800,000 strong lens images both perturbed and unperturbed by a single subhalo ranging in virial mass between $10^{7.5} M_{\odot} - 10^{11}M_{\odot}$ and characterise the source complexity by the number of Sersic clumps present in the source plane ranging from 1 to 5. Using the ResNet50 architecture we train the network to classify images as either perturbed or unperturbed. We find that the network is able to detect subhalos at low enough masses to distinguish between dark matter models even with complex sources and that source complexity has little impact on the accuracy beyond 3 clumps. The model was more confident in its classification when the clumps in the source were compact, but cared little about their spatial distribution. We also tested for the resolution of the data, finding that even in conditions akin to natural seeing the model was still able to achieve an accuracy of 74% in our highest peak signal-to-noise datasets, though this is heavily dominated by the high mass subhalos. It's robustness against resolution is attributed to the model learning the flux ratio anomalies in the perturbed lenses which are conserved in the lower resolution data.

fields

astro-ph.CO 1

years

2025 1

verdicts

CONDITIONAL 1

representative citing papers

The Roman View of Strong Gravitational Lenses

astro-ph.CO · 2025-06-03 · conditional · novelty 6.0

A detailed simulation predicts Roman's High Latitude Wide Area Survey will find about 160,000 strong lenses, of which about 500 are suitable for dark matter substructure characterization.

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  • The Roman View of Strong Gravitational Lenses astro-ph.CO · 2025-06-03 · conditional · none · ref 56 · internal anchor

    A detailed simulation predicts Roman's High Latitude Wide Area Survey will find about 160,000 strong lenses, of which about 500 are suitable for dark matter substructure characterization.