3min chapter

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#60 Geometric Deep Learning Blueprint (Special Edition)

Machine Learning Street Talk (MLST)

CHAPTER

The Blue Print of Geometric Deep Learning

In machine learning, multi scale representations and local invariants are the fundamental mathematical principles underpinning the efficiency of convolutional neural networks. These principles give us a very general blue print of geometric deep learning that can be recognized in the majority of popular deep neor network architectures. The blue print has three corps principles, symmetry, scale separation and geometric stability. This is professor michael bronstein.

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