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The Open Reaction Database

delete2021-11-02
delete152
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OA
AI
S
Steven Kearnes *
M
Michael Maser
M
Michael Wleklinski
A
Anton Kast
A
Abigail G. Doyle
S
Spencer D. Dreher
J
Joel M. Hawkins
K
Klavs F. Jensen
C
Christopher A. Voigt *
DOI:10.1021/jacs.1c09820delete
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Abstract

Abstract

En 中文
Chemical reaction data in journal articles, patents, and even electronic laboratory notebooks are currently stored in various formats, often unstructured, which presents a significant barrier to downstream applications, including the training of machine-learning models. We present the Open Reaction Database (ORD), an open-access schema and infrastructure for structuring and sharing organic reaction data, including a centralized data repository. The ORD schema supports conventional and emerging technologies, from benchtop reactions to automated high-throughput experiments and flow chemistry. The data, schema, supporting code, and web-based user interfaces are all publicly available on GitHub. Our vision is that a consistent data representation and infrastructure to support data sharing will enable downstream applications that will greatly improve the state of the art with respect to computer-aided synthesis planning, reaction prediction, and other predictive chemistry tasks.
Keywords:
CHEMISTRY INFORMER LIBRARIES
PREDICTION
SYSTEM

Journal

Journal of the American Chemical Society cover
Journal of the American Chemical Society
IF:
15.6
Papers:
20.0W
Citations:
60.2W

Organization

P
Pfizer
Scholars:
2.3W
Papers: 1.2W
Citations: 22
C
California Institute of Technology
Scholars:
2.9W
Papers: 2.5W
Citations: 4.9W
M
merck & company usa
Scholars:
6.3K
Papers: 3.5K
Citations: 5
M
merck & company
Scholars:
1.8W
Papers: 8.7K
Citations: 11
U
university of california los angeles
Scholars:
5.3W
Papers: 4.2W
Citations: 89
University of California System cover
University of California System
Scholars:
37.7W
Papers: 33.8W
Citations: 6.6K
G
Google Incorporated
Scholars:
3.5K
Papers: 1.8K
Citations: 8
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Cited Papers

Cited Papers

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Multilabel Classification Models for the Prediction of Cross-Coupling Reaction Conditions
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Flare as Applied to Photographic Lenses
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errSyuitsu Matsuda; Tadayoshi Nitoh
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The ratio of the nucleon structure functions F2N for iron and deuterium
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errJ.J. Aubert; G. Bassompierre; K.H. Becks; C. Best; E. Böhm; X. de Bouard; F.W. Brasse; C. Broll; S. Brown; J. Carr; R.W. Clifft; J.H. Cobb; G. Coignet; F. Combley; G.R. Court; G. D'Agostini; W.D. Dau; J.K. Davies; Y. Déclais; R.W. Dobinson; U. Dosselli; J. Drees; A.W. Edwards; M. Edwards; J. Favier; M.I. Ferrero; W. Flauger; E. Gabathuler; R. Gamet; J. Gayler; V. Gerhardt; C. Gössling; J. Haas; K. Hamacher; P. Hayman; M. Henckes; V. Korbel; U. Landgraf; M. Leenen; M. Maire; H. Minssieux; W. Mohr; H.E. Montgomery; K. Moser; R.P. Mount; P.R. Norton; J. McNicholas; A.M. Osborne; P. Payre; C. Peroni; H. Pessard; U. Pietrzyk; K. Rith; M. Schneegans; T. Sloan; H.E. Stier; W. Stockhausen; J.M. Thénard; J.C. Thompson; L. Urban; M. Villers; H. Wahlen; M. Whalley; D. Williams; W.S.C. Williams; J. Williamson; S.J. Wimpenny
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