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115. Irina Rish - Out-of-distribution generalization

Towards Data Science

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The Importance of Scaling in Machine Learning

The idea of neural scaling is to treat complex artificial systems like the neural nat model as, in a sense, natural. The interesting thing is that at this scale you start seeing very beautiful laws, almost like the law of large numbers also appears at scale. So when things are small, maybe you can analyze them theoretically. When things are medium, it's a mess. But then when theyare sufficiently large, some laws emerge. And that was like really, really beautiful an asense result. In a nutshell, ar there are many type of curves, because performance could be classification, or it could be crecentric laws on the test data. This is kind of the first type of curves that

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