5min chapter

Towards Data Science cover image

106. Yang Gao - Sample-efficient AI

Towards Data Science

CHAPTER

How Do We Get From Mew Zero to Tomu Zero?

We want the malto to have a self supplies signal by a like, by learning how to predict the future. So that's what gets us to tomu zero. Now we have, for the first time, a system that's not trying to model the whole world, pixle by pixle,. but instead is doing this distillation step and gives a kind of greater generality. How do you get from mew zero, which takes a whole bunch of data to train, just like a ridiculous, like, orders of magnitude more than a human might, to efficient zero? Yes? I think there are three measure technical innovations. The other two innoations is a kind

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