Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-11T23:24:36.165071Z
Paper Citation Record · LEDGER
As of 16 August 2026, this Paper Citation Record lists 100 of 167 outbound references and 7 inbound Pith citation observations for arXiv:2412.02527.
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 2026-08-11T23:24:36.165071Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-16T06:30:59.297886+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-12T04:47:57.349838Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-06-29T22:23:59.927409Z
100 of 167 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation b1da2ea4-b557-48c8-b683-42d3ac8a817c · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Abazajian, Jennifer K
Reference 1
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Observation 3ed7570c-8a15-4569-9014-18c3283b7003 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Filiz Ak, Shadab Alam, Carlos Allende Prieto, Andrés Almeida, Friedrich Anders, Scott F
Reference 2
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Observation 92732334-f254-4fb3-a0d7-cc4064ac3378 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Lupton, Nate B
Reference 3
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Observation 46aa2880-4c08-4b25-9474-271a879a85b0 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Lupton, Nate B
Reference 4
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Observation 522cc426-cee5-4d08-9cd6-ab50ca5e615a · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Bah- call, Steven Bickerton, James Bosch, Kevin Bundy, Peter L
Reference 5
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Observation 4401a989-f887-43cb-803b-3c8a5e67d366 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Albareti, Carlos Allende Prieto, F
Reference 6
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Observation f88f8c57-7885-44ac-bd36-41346843609c · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Unresolved cited work
Reference 7
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Observation 50f44c26-48b5-48f3-a951-549b352f5df6 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Alves, Hiranya V
Reference 8
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Observation 2d35d8c2-5238-4c0f-8917-51e613ac6885 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Amanullah, C
Reference 9
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Observation d7b142d1-74dc-4e85-a3c5-135d138e178e · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Galaxy zoo - the galaxy challenge, 2013
Reference 10
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Observation d8dcaaa2-6df6-44e2-bf23-fdcc99fffc04 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Audenaert, J
Reference 11
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Observation 769446eb-90b6-4f38-bfb2-c54a911d0f1a · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Audenaert and A
Reference 12
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Observation 6b57c806-71ad-4f2e-9ea8-657891505f9f · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Bagley, Steven L
Reference 13
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Observation eb65be18-ec27-4e36-b05d-aa9d23501018 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Bagley, Nor Pirzkal, Steven L
Reference 14
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Observation a0e4877e-e08a-46c4-a3ab-3f35c945579f · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Bellm, Shrinivas R
Reference 15
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Observation b18c756a-a92d-4143-887d-61104eff2246 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Bellm, Shrinivas R
Reference 16
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Observation 3b3a48c7-77b9-46be-ae3a-21fcc0480636 · outbound
Reference 17
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Observation 2580c94a-cd8f-4ca9-89fa-78be8ef1976c · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Unresolved cited work
Reference 18
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Observation ad1b81bf-9df6-4a22-8042-6aa045fdb2c9 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Blanton, Matthew A
Reference 19
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Observation e02c06e8-8436-49b3-959c-853ae1804ee1 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data A vocado: Photometric classification of astronomical transients with gaussian process augmentation
Reference 20
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Observation abb2e6c0-0a96-4353-b9db-3d28eea13bd1 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Borucki, David Koch, Gibor Basri, Natalie Batalha, Timothy Brown, Dou- glas Caldwell, John Caldwell, Jørgen Christensen-Dalsgaard, William D
Reference 21
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Observation 70d0ea48-8caf-49a5-a0e4-ef46053966a0 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Radio galaxy zoo EMU: towards a semantic radio galaxy morphology taxonomy
Reference 22
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Observation a48c602f-8b6e-47e2-a111-c2830824a126 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data A New Task: Deriving Semantic Class Targets for the Physical Sciences
Reference 23
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Observation a728a92b-93fa-45b0-a7e9-9d750cc6cdec · outbound
Reference 24
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Observation e8230fbc-1f87-403a-9364-121b2ca27fb8 · outbound
Reference 25
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Observation bf98598a-fbbc-4722-8964-b94c2e5656b1 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Brown, Alice A
Reference 27
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Observation b126debe-fda6-4930-bf0d-98d772fbbb19 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Amarsi, Thomas Nordlander, Karin Lind, Sarah L
Reference 28
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Observation d7c4468a-f2dc-4c5c-a270-54763ccb3042 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Bershady, David R
Reference 29
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Observation 5654d59b-c20f-4e94-873b-56c48a663d1c · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Unresolved cited work
Reference 30
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Observation 62b77a90-9814-44a4-80b5-e78d78540f11 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Burhanudin and Justyn R
Reference 31
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Observation 6f4969d5-0678-42f1-8496-65690c3edf89 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Burns, Emilie Parent, M
Reference 32
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Observation 6a9309db-9640-4f3e-8c7b-9000cb01e599 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Caldwell, Peter Tenenbaum, Joseph D
Reference 33
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Observation 9a92f5c3-25cb-4433-ac40-c7ad3ea6443f · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Davis, Dan Scolnic, Khaled Said, Dillon Brout, Erik R
Reference 34
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Observation b2ad72c1-daf8-45ad-ad4d-a78ac9bdd975 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Andrews, José Sánchez-Gallego, Joel Brownstein, María Argudo-Fernández, Michael Blanton, Kevin Bundy, Amy Jones, Karen Masters, David R
Reference 35
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Observation 7fca441b-bad9-44fd-b064-3877909cd60e · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Unresolved cited work
Reference 36
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Observation eefbe2db-0344-4458-bff5-3f67b34076f1 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Unresolved cited work
Reference 37
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Observation 388a67b0-75b6-47d0-a193-51977f37540a · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data De Angeli, M
Reference 38
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Observation e9d46a34-4570-476a-b452-af05ebd7bec9 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Unresolved cited work
Reference 39
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Observation 704b841b-94ca-401d-92b5-6dfca9e5d796 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data The Early Data Release of the Dark Energy Spectroscopic Instrument
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Observation bcaff576-5929-4367-a577-2930243fd4bf · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data The DESI Experiment Part I: Science,Targeting, and Survey Design
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Observation f6426c3a-c94f-4659-ab24-b1676eca1b81 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Overview of the desi legacy imaging surveys
Reference 42
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Observation 60010ef3-f3f7-4e2f-a243-ef9be1ef2f9c · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Schlegel, Dustin Lang, Robert Blum, Kaylan Burleigh, Xiaohui Fan, Joseph R
Reference 43
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Observation 1c268900-4e52-4151-a430-d6c909d51cb9 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Schlegel, Dustin Lang, Robert Blum, Kaylan Burleigh, Xiaohui Fan, Joseph R
Reference 44
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Observation 70042103-3b99-4081-a95d-050b12762547 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Willett, and Joni Dambre
Reference 45
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Observation e1d560f0-3fa4-4562-98ee-7a40e228b584 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Dobryakov, K
Reference 46
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Observation 4476edc8-44f7-4552-a233-689ee4ca0fa8 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Domínguez Sánchez, M
Reference 47
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Observation 796de7ff-945a-42b0-adb7-48f7a8c82833 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Dunlop, Roberto G
Reference 48
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Observation 2bd80929-36cc-4d72-89e4-4e5773364051 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Eisenstein, David H
Reference 49
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Observation b8566034-ae51-441f-b884-05639307782a · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Overview of the JWST Advanced Deep Extragalactic Survey (JADES)
Reference 50
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Observation a6329a76-d45a-4845-a4cf-b6b53dc06e27 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Evans, Francis A
Reference 51
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Observation 686d890c-4c8e-44f7-bef3-49616cbc6029 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Finkelstein, Micaela B
Reference 52
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Observation f310bb3a-fb5c-42eb-8eb7-dd1bc0040fde · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Foley, Daniel Scolnic, Armin Rest, S
Reference 53
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Observation b796aeda-6564-427f-a830-50c450f365ac · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Major TOM: Expandable Datasets for Earth Observation
Reference 54
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Observation 297ab5d1-8b7d-43ff-a2e7-87bb368f8371 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Freedman, Barry F
Reference 55
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Observation 98c9bafd-a94b-4d16-8d7a-ad00e703fed8 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Fremling, A
Reference 56
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Recio-Blanco, G
Reference 58
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Observation 391c6b13-11b3-4196-9b68-e3a2c456dea9 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Vallenari, A
Reference 59
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data The Pile: An 800GB Dataset of Diverse Text for Language Modeling
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Observation 8b265a9e-7f79-4478-9d67-a3145253f610 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data García Pérez, Carlos Allende Prieto, Jon A
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data MOMENT: A Family of Open Time-series Foundation Models
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Unresolved cited work
Reference 64
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Unresolved cited work
Reference 65
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Deep residual learning for image recognition
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Hebbar and Craig O
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Kirshner, Tom Matheson, Maryam Modjaz, Armin Rest, W
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Kirshner, Armin Rest, Claire E
Reference 69
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Friedman, Stephane Blondin, Peter Challis, Perry Berlind, Mike Calkins, Gil Esquerdo, Thomas Matheson, Maryam Modjaz, Armin Rest, and Robert P
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Reference 71
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Reference 72
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Observation 4f1f327e-cf30-4c62-a8e2-a012e0066222 · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Huang, Andrew Vanderburg, Andras Pál, Lizhou Sha, Liang Yu, Willie Fong, Michael Fausnaugh, A vi Shporer, Natalia Guerrero, Roland Vanderspek, and George Ricker
Reference 73
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Huang, Andrew Vanderburg, Andras Pál, Lizhou Sha, Liang Yu, Willie Fong, Michael Fausnaugh, A vi Shporer, Natalia Guerrero, Roland Vanderspek, and George Ricker
Reference 74
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Densely connected convolutional networks
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Reference 76
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Huertas-Company, K
Reference 77
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Huertas-Company and F
Reference 78
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Unresolved cited work
Reference 79
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Jenkins, Joseph D
Reference 80
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Observation 4a5d9f4c-c88d-437a-bfce-97817a8143ef · outbound
The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Unresolved cited work
Reference 81
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Unresolved cited work
Reference 82
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Frieman, Alexandre Glazov, Santiago González-Gaitán, Renée Hlozek, Saurabh Jha, Stephen Kuhlmann, Martin Kunz, Hubert Lampeitl, Ashish Mahabal, James Newling, Robert C
Reference 83
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Adam: A Method for Stochastic Optimization
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Koch, William J
Reference 85
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Reference 86
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Quick-look Pipeline Lightcurves for 9.1 Million Stars Observed over the First Year of 34 the TESS Extended Mission
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Quick-look Pipeline Light Curves for 5.7 Million Stars Observed Over the Second Year of TESS’ First Extended Mission
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Law, Brian Cherinka, Renbin Yan, Brett H
Reference 89
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The Multimodal Universe: Enabling Large-Scale Machine Learning with 100TB of Astronomical Scientific Data Lee, Ralf Gommers, Filip Waselewski, Kai Wohlfahrt, and Aaron O’Leary
Reference 90
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Reference 91
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Reference 92
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Observation 26c2b3af-ff74-4e5d-83f1-b6446498141a · outbound
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Reference 94
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Reference 96
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Reference 97
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Reference 98
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Reference 99
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Reference 100
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Reference 101
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Reference 102
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Reference 28
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Reference 171
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Reference 19
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Reference 19
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Reference 30
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