Neural Message Passing for Quantum Chemistry

Pages: 1263 - 1272
Published: Apr 4, 2017
Abstract
Supervised learning on molecules has incredible potential to be useful in chemistry, drug discovery, and materials science. Luckily, several promising and closely related neural network models invariant to molecular symmetries have already been described in the literature. These models learn a message passing algorithm and aggregation procedure to compute a function of their entire input graph. At this point, the next step is to find a...
Paper Details
Title
Neural Message Passing for Quantum Chemistry
Published Date
Apr 4, 2017
Pages
1263 - 1272
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