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Episode 32: Jamie Simon, UC Berkeley: On theoretical principles for how neural networks learn and generalize

Generally Intelligent

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The Future of Deep Learning and Neural Architecture Search

This is exactly the tenuous bridge between is that I had in my head when I was doing this work and doing the reverse engineering the NTK work. You can sort of imagine this new paradigm of deep learning where deep learning architectures connect theoretically to the kernel you can understand the kernel behavior on the data. That's really cool. While this requires much more exploration to be made viable, I think pieces like this probably can ultimately be made to work.

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