3min chapter

Machine Learning Street Talk (MLST) cover image

#60 Geometric Deep Learning Blueprint (Special Edition)

Machine Learning Street Talk (MLST)

CHAPTER

The Perceptive Component of Geometric Deplerning

I think en large, i agree with the idea of analogy making. And maybe i would take it a step further, right? Where you have a particular set of knowledge and conclusions that you have derived so far,. A set of primitives that you can use to figure out how to recompose them. Will geometric deep learning be enough to encompass the ultimate solution? I've a feeling that it will. But w i don't, i don't necessarily ire, just based on the empirical evidence we've been seeing in the recent papers that we've put out. It's super easy to do it in distribution, but you're not algarithmic if you don't extrapolate.

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