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Hugo Larochelle: Deep Learning as Science

The Gradient: Perspectives on AI

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How to Recycle Deep Learning With a Big Neural Network

The metal thing was a really exciting idea to try to learn how to learn new tasks and that had small amounts of data. This led to the meta LSTM work where essentially I made the connection between doing forms of gradient descent updates which are didive with an LSTM. can then train a learning by gradient descent type procedure to better generalize on few shot learning problems problems with small training sets. There's still a lot of questions and a lot of exploration to do about refining our understanding of what sort of properties of a good pre-trained model are the right for this particular problem.

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