Streamlined lensed quasar identification in multiband images via ensemble networks
Quasars experiencing strong lensing offer unique viewpoints on subjects related to the cosmic expansion rate, the dark matter profile within the foreground deflectors, and the quasar host galaxies. Unfortunately, identifying them in astronomical images is challenging since they are overwhelmed by th...
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Published in | Astronomy and astrophysics (Berlin) Vol. 678; p. A103 |
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Main Authors | , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
01.10.2023
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Online Access | Get full text |
ISSN | 0004-6361 1432-0746 |
DOI | 10.1051/0004-6361/202347332 |
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Abstract | Quasars experiencing strong lensing offer unique viewpoints on subjects related to the cosmic expansion rate, the dark matter profile within the foreground deflectors, and the quasar host galaxies. Unfortunately, identifying them in astronomical images is challenging since they are overwhelmed by the abundance of non-lenses. To address this, we have developed a novel approach by ensembling cutting-edge convolutional networks (CNNs) - for instance, ResNet, Inception, NASNet, MobileNet, EfficientNet, and RegNet – along with vision transformers (ViTs) trained on realistic galaxy-quasar lens simulations based on the Hyper Suprime-Cam (HSC) multiband images. While the individual model exhibits remarkable performance when evaluated against the test dataset, achieving an area under the receiver operating characteristic curve of >97.3% and a median false positive rate of 3.6%, it struggles to generalize in real data, indicated by numerous spurious sources picked by each classifier. A significant improvement is achieved by averaging these CNNs and ViTs, resulting in the impurities being downsized by factors up to 50. Subsequently, combining the HSC images with the UKIRT, VISTA, and unWISE data, we retrieve approximately 60 million sources as parent samples and reduce this to 892 609 after employing a photometry preselection to discover
z
> 1.5 lensed quasars with Einstein radii of
θ
E
<
5″. Afterward, the ensemble classifier indicates 3080 sources with a high probability of being lenses, for which we visually inspect, yielding 210 prevailing candidates awaiting spectroscopic confirmation. These outcomes suggest that automated deep learning pipelines hold great potential in effectively detecting strong lenses in vast datasets with minimal manual visual inspection involved. |
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AbstractList | Quasars experiencing strong lensing offer unique viewpoints on subjects related to the cosmic expansion rate, the dark matter profile within the foreground deflectors, and the quasar host galaxies. Unfortunately, identifying them in astronomical images is challenging since they are overwhelmed by the abundance of non-lenses. To address this, we have developed a novel approach by ensembling cutting-edge convolutional networks (CNNs) - for instance, ResNet, Inception, NASNet, MobileNet, EfficientNet, and RegNet – along with vision transformers (ViTs) trained on realistic galaxy-quasar lens simulations based on the Hyper Suprime-Cam (HSC) multiband images. While the individual model exhibits remarkable performance when evaluated against the test dataset, achieving an area under the receiver operating characteristic curve of >97.3% and a median false positive rate of 3.6%, it struggles to generalize in real data, indicated by numerous spurious sources picked by each classifier. A significant improvement is achieved by averaging these CNNs and ViTs, resulting in the impurities being downsized by factors up to 50. Subsequently, combining the HSC images with the UKIRT, VISTA, and unWISE data, we retrieve approximately 60 million sources as parent samples and reduce this to 892 609 after employing a photometry preselection to discover
z
> 1.5 lensed quasars with Einstein radii of
θ
E
<
5″. Afterward, the ensemble classifier indicates 3080 sources with a high probability of being lenses, for which we visually inspect, yielding 210 prevailing candidates awaiting spectroscopic confirmation. These outcomes suggest that automated deep learning pipelines hold great potential in effectively detecting strong lenses in vast datasets with minimal manual visual inspection involved. |
Author | Andika, Irham Taufik Yue, Minghao Schuldt, Stefan Jaelani, Anton Timur Cañameras, Raoul Suyu, Sherry H. Eilers, Anna-Christina Melo, Alejandra Shu, Yiping |
Author_xml | – sequence: 1 givenname: Irham Taufik orcidid: 0000-0001-6102-9526 surname: Andika fullname: Andika, Irham Taufik – sequence: 2 givenname: Sherry H. surname: Suyu fullname: Suyu, Sherry H. – sequence: 3 givenname: Raoul surname: Cañameras fullname: Cañameras, Raoul – sequence: 4 givenname: Alejandra surname: Melo fullname: Melo, Alejandra – sequence: 5 givenname: Stefan surname: Schuldt fullname: Schuldt, Stefan – sequence: 6 givenname: Yiping surname: Shu fullname: Shu, Yiping – sequence: 7 givenname: Anna-Christina surname: Eilers fullname: Eilers, Anna-Christina – sequence: 8 givenname: Anton Timur surname: Jaelani fullname: Jaelani, Anton Timur – sequence: 9 givenname: Minghao surname: Yue fullname: Yue, Minghao |
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CitedBy_id | crossref_primary_10_1093_mnras_staf327 crossref_primary_10_1093_mnras_stae875 crossref_primary_10_1051_0004_6361_202347244 crossref_primary_10_1051_0004_6361_202349025 crossref_primary_10_1051_0004_6361_202453474 crossref_primary_10_1051_0004_6361_202450927 crossref_primary_10_1007_s11214_024_01042_9 crossref_primary_10_3847_1538_4357_adaf28 crossref_primary_10_1093_pasj_psae102 crossref_primary_10_1093_mnras_stae902 |
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