Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T23:11:36.680563Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 39 of 39 outbound references and 0 inbound Pith citation observations for arXiv:2506.19434.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T23:11:36.680563Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-07T06:34:17.273281+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
39 of 39 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 752bf3c6-06ae-48ca-a34e-a552662f9d36 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Morphological Classification of Galaxies Through Structural and Star Formation Parameters Using Machine Learning
Reference 1
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Observation 4182bdf0-91d9-41c2-96d4-d8725bb5770d · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising A benchmark analysis of saliency-based explainable deep learning methods for the morphological classification of radio galaxies
Reference 2
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Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising et al, 2011 , The EFIGI catalogue of 4458 nearby galaxies with detailed morphology, Astronomy & Astrophysics, 532, A74
Reference 3
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Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Unresolved cited work
Reference 4
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Observation 9e6bb367-6f1d-4ff7-812a-8ae9cbd25150 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising et al., 2022, A program to build E(N)-equivariant steerable CNNs
Reference 5
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Observation f6f64344-7cdc-44c4-bed1-d7c723637346 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Robustness of deep learning algorithms in astronomy -- galaxy morphology studies
Reference 6
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Observation 69a7c5e6-e93f-4b71-b1e5-b9b846de8919 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising et al, 2022, Deepadversaries: examining the robustness of deep learning models for galaxy morphology classification
Reference 7
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Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Group Equivariant Convolutional Networks
Reference 8
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Observation 802d5d95-390b-42be-880c-258071e4b44e · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Unresolved cited work
Reference 9
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Observation 1e4deb30-c619-4a84-8b34-4a9c489e5689 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising al., 2021, ROGER: Reconstructing orbits of galaxies in extreme regions using machine learning techniques, MNRAS, Volume 500, Issue 2, pp.1784-1794
Reference 10
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Observation 9e955a4c-6a0d-4fdf-86b4-67e3f8cd5cc1 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising G., et al
Reference 11
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Observation f6689a28-c0d1-4e2a-b3e0-090c26474938 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Machine Learning Workflow for Morphological Classification of Galaxies
Reference 12
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Observation ac25073d-624b-4bac-ab0b-46bbf1bfc873 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Robustness of Rotation-Equivariant Networks to Adversarial Perturbations
Reference 13
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Observation c34f3a32-db38-41a3-bf9e-b81645072f55 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising DAWN JWST Archive: Morphology from profile fitting of over 340 000 galaxies in major fields
Reference 14
Source-reported events for the cited work
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Observation b7334984-d3d8-4466-8579-caa6d06a6f7e · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Intrinsic galaxy alignments in the KiDS-1000 bright sample: dependence on colour, luminosity, morphology, and galaxy scale
Reference 15
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Observation 49f1de4d-7db2-4a61-91af-d3a6e87fc626 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Galaxy Morphological Classification with Zernike Moments and Machine Learning Approaches
Reference 16
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Observation 3564b499-5363-4140-8bff-3df6b5cf3fbf · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising et al., 2022, Galaxy Morphology Classification with DenseNet, Journal of Physics: Conference Series, Volume 2402, Issue 1, id.012009, 11 pp
Reference 17
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Observation 0b029294-1b7d-4f00-b59c-5b27d5c13669 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Morphological Feature Distances Among the Spectral Types of SDSS Galaxies
Reference 18
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Observation cf96ea97-ac07-40ea-8d80-9ff4a867e8d1 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Auto-Encoding Variational Bayes
Reference 19
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Observation 21d78fff-4e1d-4bc9-b9ad-975a9195b9cd · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Unresolved cited work
Reference 20
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Observation 0e112670-fd27-4514-a110-618c40833736 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Unresolved cited work
Reference 21
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Observation d974bbe9-8f2f-40c7-b49f-66ef89fbd90a · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Evaluating the Accuracy of Non-parametric Galaxy Morphological Indicator Measurements in the CSST Imaging Survey
Reference 22
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Observation c8293413-246d-4136-85a7-e8109bc2fa01 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Morphological Classification of Galaxies
Reference 23
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Observation d90d6685-9346-4883-b50e-0583092f58c3 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising S.; Khachatryan, H.; Yegorian, G.; Gurzadyan, V
Reference 24
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Observation ac7b1571-9b0a-4080-9344-6e0259417844 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising et al., 2010, Galaxy Formation and Evolution, Cambridge University Press
Reference 25
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Observation 7936d61e-682b-4a9a-ab6e-5cc6b520cd6e · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Unresolved cited work
Reference 26
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Observation 7cf1411d-8f3d-42d6-ac44-e8f2450efb71 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising E(2) Equivariant Neural Networks for Robust Galaxy Morphology Classification
Reference 27
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Observation 62458681-5e5a-49b0-9581-0bd0e7931727 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising et al., 2003, HYPERLEDA
Reference 28
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Observation 2e10bb11-ea39-4c54-adf5-f68b3ba12beb · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Unresolved cited work
Reference 29
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Observation 18508786-f395-4816-87bc-b55ef2f4b0df · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Data-Efficient Classification of Radio Galaxies
Reference 30
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Observation ec97d747-d522-4c12-8f5e-33342f09a163 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising The SRG/eROSITA all-sky survey: The morphologies of clusters of galaxies I: A catalogue of morphological parameters
Reference 31
Source-reported events for the cited work
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Observation ff8981b0-5102-4844-b46e-5bb6f0c042c2 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Unresolved cited work
Reference 32
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Observation df8a8192-fb69-4fd0-874d-26391d9755c0 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Automatic Machine Learning Framework to Study Morphological Parameters of AGN Host Galaxies within $z < 1.4$ in the Hyper Supreme-Cam Wide Survey
Reference 33
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Observation 0f77d63f-c15c-4e08-aace-89c0ed686915 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Unresolved cited work
Reference 34
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Observation 7ad3a929-b6c6-41e4-b327-ea3ce80c7351 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising et al., 2022, Galaxy Zoo DECaLS: Detailed visual morphology measurements from volunteers and deep learning for 314000 galaxies, MNRAS, Volume 509, Issue 3, pp.3966-3988
Reference 35
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Observation 8d18a465-618a-467b-9b30-88221bc0f445 · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Unresolved cited work
Reference 36
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Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Conference on Neural Information Processing Systems (NeurIPS)
Reference 37
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Observation 749e255f-bd15-4d69-8ffe-0dd46dc28fec · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising Unresolved cited work
Reference 38
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Observation d718a6dc-630b-4544-8086-ba118a2dd0bc · outbound
Enhancing Galaxy Classification with U-Net Variational Autoencoders for Image Denoising et al., 2019, Galaxy morphology classification with deep convolutional neural networks, Astrophysics and Space Science, Volume 364, Issue 4, id
Reference 39
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
No inbound Pith citation observations are available.