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Workshop: Machine Learning for Molecules

Jose Miguel Hernández-Lobato, Matt Kusner, Brooks Paige, Marwin Segler, Jennifer Wei

Sat, Dec 12th, 2020 @ 13:30 – 21:00 GMT
Abstract: Discovering new molecules and materials is a central pillar of human well-being, providing new medicines, securing the world’s food supply via agrochemicals, or delivering new battery or solar panel materials to mitigate climate change. However, the discovery of new molecules for an application can often take up to a decade, with costs spiraling. Machine learning can help to accelerate the discovery process. The goal of this workshop is to bring together researchers interested in improving applications of machine learning for chemical and physical problems and industry experts with practical experience in pharmaceutical and agricultural development. In a highly interactive format, we will outline the current frontiers and present emerging research directions. We aim to use this workshop as an opportunity to establish a common language between all communities, to actively discuss new research problems, and also to collect datasets by which novel machine learning models can be benchmarked. The program is a collection of invited talks, alongside contributed posters. A panel discussion will provide different perspectives and experiences of influential researchers from both fields and also engage open participant conversation. An expected outcome of this workshop is the interdisciplinary exchange of ideas and initiation of collaboration.

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Schedule

13:30 – 22:00 GMT
Discord for Q&A
13:30 – 13:40 GMT
Opening Remarks
13:40 – 13:41 GMT
Speaker Introduction: Nadine Schneider
13:41 – 14:01 GMT
Invited Talk: Nadine Schneider -Real-world application of ML in drug discovery
Nadine Schneider
14:01 – 14:10 GMT
Invited Talk: Nadine Schneider - Live Q&A
14:10 – 14:11 GMT
Speaker Introduction: Frank Noe
14:11 – 14:31 GMT
Invited Talk: Frank Noe - The sampling problem in statistical mechanics and Boltzmann-Generating Flows
Frank Noe
14:31 – 14:40 GMT
Invited Talk: Frank Noe - Live Q&A
14:40 – 14:50 GMT
Contributed Talk: Evidential Deep Learning for Guided Molecular Property Prediction and Discovery - Ava Soleimany, Alexander Amini, Samuel Goldman, Daniela Rus, Sangeeta Bhatia and Connor Coley
Ava P Soleimany
14:50 – 15:00 GMT
Contributed Talk: Gaussian Process Molecular Property Prediction with FlowMO - Henry Moss and Ryan-Rhys Griffiths
Henry Moss
15:00 – 15:10 GMT
Contributed Talk: Explaining Deep Graph Networks with Molecular Counterfactuals - Davide Bacciu and Danilo Numeroso
Danilo Numeroso
15:10 – 15:11 GMT
Speaker Introduction: Klaus Robert-Müller & Kristof Schütt
15:11 – 15:31 GMT
Invited Talk: Klaus Robert-Müller & Kristof Schütt: Machine Learning meets Quantum Chemistry
Klaus-Robert Müller, Kristof Schütt
15:31 – 15:40 GMT
Invited Talk: Klaus Robert-Müller and Kristof Schütt - Live Q&A
15:40 – 15:41 GMT
Speaker Introduction: Rocio Mercado
15:41 – 16:01 GMT
Invited Talk: Rocio Mercado - Applying Graph Neural Networks to Molecular Design
Rocío Mercado
16:01 – 16:10 GMT
Invited Talk: Rocio Mercado - Live Q&A
16:10 – 16:15 GMT
Spotlight Talk: Comparison of Atom Representations in Graph Neural Networks for Molecular Property Prediction - Agnieszka Pocha, Tomasz Danel and Lukasz Maziarka
Tomasz Danel
16:15 – 16:20 GMT
Spotlight Talk: Completion of partial reaction equations - Alain C. Vaucher, Philippe Schwaller and Teodoro Laino
Alain Vaucher,
16:20 – 16:25 GMT
Spotlight Talk: Molecular representation learning with language models and domain-relevant auxiliary tasks - Benedek Fabian, Thomas Edlich, Héléna Gaspar, Marwin Segler, Joshua Meyers, Marco Fiscato and Mohamed Ahmed
Benedek Fabian
16:25 – 16:30 GMT
Spotlight Talk: Accelerate the screening of complex materials by learning to reduce random and systematic errors - Tian Xie, Yang Shao-Horn and Jeffrey Grossman.
Tian Xie
16:30 – 17:30 GMT
Poster Session Break
17:30 – 18:00 GMT
Panel
Alan Aspuru-Guzik, Jennifer Listgarten, Klaus-Robert Müller
18:00 – 18:10 GMT
Contributed Talk: Bayesian GNNs for Molecular Property Prediction - George Lamb and Brooks Paige
George Lamb
18:10 – 18:20 GMT
Contributed Talk: Design of Experiments for Verifying Biomolecular Networks - Ruby Sedgwick, John Goertz, Ruth Misener, Molly Stevens and Mark van der Wilk.
Ruby Sedgwick
18:20 – 18:30 GMT
Contributed Talk: Multi-task learning for electronic structure to predict and explore molecular potential energy surfaces - Z. Qiao, F. Ding, M. Welborn, P.J. Bygrave, D.G.A. Smith, A. Anandkumar, F. R. Manby and TF. Miller III
Zhuoran Qiao
18:30 – 18:31 GMT
Speaker Introduction: Patrick Walters
18:31 – 18:51 GMT
Invited Talk: Patrick Walters - Challenges and Opportunities for Machine Learning in Drug Discovery
Patrick Walters
18:51 – 19:00 GMT
Invited Talk: Patrick Walters - Live Q&A
19:00 – 19:01 GMT
Speaker Introduction: Yannick Djoumbou Feunang
19:01 – 19:21 GMT
Invited Talk: Yannick Djoumbou Feunang - In Silico Prediction and Identification of Metabolites with BioTransformer
Yannick Djoumbou Feunang
19:21 – 19:30 GMT
Invited Talk: Yannick Djoumbou Feunang - Live Q&A
19:30 – 19:35 GMT
Spotlight Talk: Data augmentation strategies to improve reaction yield predictions and estimate uncertainty - Philippe Schwaller, Alain Vaucher, Teodoro Laino and Jean-Louis Reymond
Philippe Schwaller
19:35 – 19:40 GMT
Spotlight Talk: Message Passing Networks for Molecules with Tetrahedral Chirality - Lagnajit Pattanaik, Octavian Ganea, Ian Coley, Klavs Jensen, William Green and Connor Coley.
Lagnajit Pattanaik
19:40 – 19:45 GMT
Spotlight Talk: Protein model quality assessment using rotation-equivariant, hierarchical neural networks - Stephan Eismann, Patricia Suriana, Bowen Jing, Raphael Townshend and Ron Dror.
Stephan Eismann
19:45 – 19:50 GMT
Spotlight Talk: Crystal Structure Search with Random Relaxations Using Graph Networks - Gowoon Cheon, Lusann Yang, Kevin McCloskey, Evan Reed and Ekin Cubuk
Gowoon Cheon
19:50 – 19:51 GMT
Speaker Introduction: Benjamin Sanchez-Lengeling
19:51 – 20:11 GMT
Invited Talk: Benjamin Sanchez-Lengeling - Evaluating Attribution of Molecules with Graph Neural Networks
Benjamin Sanchez-Lengeling
20:11 – 20:20 GMT
Invited Talk: Benjamin Sanchez-Lengeling - Live Q&A
20:20 – 20:21 GMT
Speaker Introduction: Jennifer Listgarten
20:21 – 20:41 GMT
Invited Talk: Jennifer Listgarten
Jennifer Listgarten
20:41 – 20:50 GMT
Invited Talk: Jennifer Listgarten - Live Q&A
20:50 – 21:00 GMT
Closing Remarks
21:00 – 22:00 GMT
Poster Session Part 2