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Identification of Galaxy-Galaxy Strong Lens Candidates in the DECam Local Volume Exploration Survey Using Machine Learning

Authors :
Zaborowski, E. A.
Drlica-Wagner, A.
Ashmead, F.
Wu, J. F.
Morgan, R.
Bom, C. R.
Shajib, A. J.
Birrer, S.
Cerny, W.
Buckley-Geer, L.
Mutlu-Pakdil, B.
Ferguson, P. S.
Glazebrook, K.
Lozano, S. J. Gonzalez
Gordon, Y.
Martinez, M.
Manwadkar, V.
O'Donnell, J.
Poh, J.
Riley, A.
Sakowska, J. D.
Santana-Silva, L.
Santiago, B. X.
Sluse, D.
Tan, C. Y.
Tollerud, E. J.
Verma, A.
Carballo-Bello, J. A.
Choi, Y.
James, D. J.
Kuropatkin, N.
Martínez-Vázquez, C. E.
Nidever, D. L.
Castellon, J. L. Nilo
Noël, N. E. D.
Olsen, K. A. G.
Pace, A. B.
Mau, S.
Yanny, B.
Zenteno, A.
Abbott, T. M. C.
Aguena, M.
Alves, O.
Andrade-Oliveira, F.
Bocquet, S.
Brooks, D.
Burke, D. L.
Rosell, A. Carnero
Kind, M. Carrasco
Carretero, J.
Castander, F. J.
Conselice, C. J.
Costanzi, M.
Pereira, M. E. S.
De Vicente, J.
Desai, S.
Dietrich, J. P.
Doel, P.
Everett, S.
Ferrero, I.
Flaugher, B.
Friedel, D.
Frieman, J.
García-Bellido, J.
Gruen, D.
Gruendl, R. A.
Gutierrez, G.
Hinton, S. R.
Hollowood, D. L.
Honscheid, K.
Kuehn, K.
Lin, H.
Marshall, J. L.
Melchior, P.
Mena-Fernández, J.
Menanteau, F.
Miquel, R.
Palmese, A.
Paz-Chinchón, F.
Pieres, A.
Malagón, A. A. Plazas
Prat, J.
Rodriguez-Monroy, M.
Romer, A. K.
Sanchez, E.
Scarpine, V.
Sevilla-Noarbe, I.
Smith, M.
Suchyta, E.
To, C.
Weaverdyck, N.
Source :
ApJ 954 68 (2023)
Publication Year :
2022

Abstract

We perform a search for galaxy-galaxy strong lens systems using a convolutional neural network (CNN) applied to imaging data from the first public data release of the DECam Local Volume Exploration Survey (DELVE), which contains $\sim 520$ million astronomical sources covering $\sim 4,000$ $\mathrm{deg}^2$ of the southern sky to a $5\sigma$ point-source depth of $g=24.3$, $r=23.9$, $i=23.3$, and $z=22.8$ mag. Following the methodology of similar searches using DECam data, we apply color and magnitude cuts to select a catalog of $\sim 11$ million extended astronomical sources. After scoring with our CNN, the highest scoring 50,000 images were visually inspected and assigned a score on a scale from 0 (definitely not a lens) to 3 (very probable lens). We present a list of 581 strong lens candidates, 562 of which are previously unreported. We categorize our candidates using their human-assigned scores, resulting in 55 Grade A candidates, 149 Grade B candidates, and 377 Grade C candidates. We additionally highlight eight potential quadruply lensed quasars from this sample. Due to the location of our search footprint in the northern Galactic cap ($b > 10$ deg) and southern celestial hemisphere (${\rm Dec.}<0$ deg), our candidate list has little overlap with other existing ground-based searches. Where our search footprint does overlap with other searches, we find a significant number of high-quality candidates which were previously unidentified, indicating a degree of orthogonality in our methodology. We report properties of our candidates including apparent magnitude and Einstein radius estimated from the image separation.<br />Comment: 24 pages; published version (ApJ)

Details

Database :
arXiv
Journal :
ApJ 954 68 (2023)
Publication Type :
Report
Accession number :
edsarx.2210.10802
Document Type :
Working Paper
Full Text :
https://doi.org/10.3847/1538-4357/ace4ba