4min chapter

Machine Learning Street Talk (MLST) cover image

#60 Geometric Deep Learning Blueprint (Special Edition)

Machine Learning Street Talk (MLST)

CHAPTER

Why Do We Care About Data Efficiency?

When i was an undergraduate student, i was interested in image processing and was excited about variational methods. I think these were really beautiful and deep ideas that, unfortunately now are almost forgotten in the era of deep learning. Ironically, we've recently used non euclidian diffusion equations as a way to re interpret grafne or letrocks as neural pides. Now, equivari noup works tend to generalize much better and require much less data. Ad is, the data indeed has the symmetry that you assumed in your model. But people often ask ow, why do we even care about data efficiency when we can just collect more data? And i think the answer why you might

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