2min chapter

Machine Learning Street Talk (MLST) cover image

#55 Self-Supervised Vision Models (Dr. Ishan Misra - FAIR).

Machine Learning Street Talk (MLST)

CHAPTER

Is It Really Semantics?

I'm just trying to get my head around this because you started off by saying that these universal discrete categories don't exist. But what we get from one of the, so this representation that we've learned is has some interesting properties. And it does seem to have some kind of universality. It does have very broad applicability to lots of downstream tasks. Is it really semantics because it's so strongly influenced by the data and on Instagram, you know, it learns a lot about sailing objects in an image but on Instagram, most of the images are of things, right?

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