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Journal of Chemical Information and Modeling
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June 23, 2020
TorchANI: A Free and Open Source PyTorch-Based Deep Learning Implementation of the ANI Neural Network Potentials
Xiang Gao, Farhad Ramezanghorbani, Olexandr Isayev, et al.
Nature
|
July 27, 2018
Machine learning for molecular and materials science
Keith T Butler, Daniel W Davies, Hugh Cartwright, et al.
Journal of Chemical Theory and Computation
|
February 14, 2026
AIQM3: Targeting Coupled-Cluster Accuracy with Semi-Empirical Speed across Seven Main-Group Elements
Yuxinxin Chen, Yi-Fan Hou, Roman Zubatyuk, et al.
Environmental Pollution (Barking, Essex : 1987)
|
July 27, 2010
One-electron standard reduction potentials of nitroaromatic and cyclic nitramine explosives
Minori Uchimiya, Leonid Gorb, Olexandr Isayev, et al.
Journal of Chemical Information and Modeling
|
April 29, 2025
Including Physics-Informed Atomization Constraints in Neural Networks for Reactive Chemistry
Shuhao Zhang, Michael Chigaev, Olexandr Isayev, et al.
Nature Communications
|
June 6, 2017
Universal fragment descriptors for predicting properties of inorganic crystals
Olexandr Isayev, Corey Oses, Cormac Toher, et al.
The Journal of Chemical Physics
|
July 2, 2018
Less is more: Sampling chemical space with active learning
Justin S Smith, Ben Nebgen, Nicholas Lubbers, et al.
Annual Review of Physical Chemistry
|
June 28, 2024
Machine Learning of Reactive Potentials
Yinuo Yang, Shuhao Zhang, Kavindri D Ranasinghe, et al.
Proteins
|
August 7, 2012
In silico structure-function analysis of E. cloacae nitroreductase
Olexandr Isayev, Carlos E Crespo-Hernández, Leonid Gorb, et al.
Nature Communications
|
August 12, 2021
Teaching a neural network to attach and detach electrons from molecules
Roman Zubatyuk, Justin S Smith, Benjamin T Nebgen, et al.
Page
of 10
Search research articles
Search
Showing results (41-50 of 93) with videos related to
Sort By:
Page
of 10
Journal of Chemical Information and Modeling
|
June 23, 2020
TorchANI: A Free and Open Source PyTorch-Based Deep Learning Implementation of the ANI Neural Network Potentials
Xiang Gao, Farhad Ramezanghorbani, Olexandr Isayev, et al.
Nature
|
July 27, 2018
Machine learning for molecular and materials science
Keith T Butler, Daniel W Davies, Hugh Cartwright, et al.
Journal of Chemical Theory and Computation
|
February 14, 2026
AIQM3: Targeting Coupled-Cluster Accuracy with Semi-Empirical Speed across Seven Main-Group Elements
Yuxinxin Chen, Yi-Fan Hou, Roman Zubatyuk, et al.
Environmental Pollution (Barking, Essex : 1987)
|
July 27, 2010
One-electron standard reduction potentials of nitroaromatic and cyclic nitramine explosives
Minori Uchimiya, Leonid Gorb, Olexandr Isayev, et al.
Journal of Chemical Information and Modeling
|
April 29, 2025
Including Physics-Informed Atomization Constraints in Neural Networks for Reactive Chemistry
Shuhao Zhang, Michael Chigaev, Olexandr Isayev, et al.
Nature Communications
|
June 6, 2017
Universal fragment descriptors for predicting properties of inorganic crystals
Olexandr Isayev, Corey Oses, Cormac Toher, et al.
The Journal of Chemical Physics
|
July 2, 2018
Less is more: Sampling chemical space with active learning
Justin S Smith, Ben Nebgen, Nicholas Lubbers, et al.
Annual Review of Physical Chemistry
|
June 28, 2024
Machine Learning of Reactive Potentials
Yinuo Yang, Shuhao Zhang, Kavindri D Ranasinghe, et al.
Proteins
|
August 7, 2012
In silico structure-function analysis of E. cloacae nitroreductase
Olexandr Isayev, Carlos E Crespo-Hernández, Leonid Gorb, et al.
Nature Communications
|
August 12, 2021
Teaching a neural network to attach and detach electrons from molecules
Roman Zubatyuk, Justin S Smith, Benjamin T Nebgen, et al.
Page
of 10