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Sewon Min: The Science of Natural Language

The Gradient: Perspectives on AI

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The Importance of Input Distribution in in-Context Learning

The mapping between input and labels are not necessarily important to perform in-context learning, but what's rather important is the distributions of the input and distribution of output. The model knows that the movie review is typically credulated with positive sentiment or negative sentiment. And that's I think how the model figures out what they're supposed to do - read the movie review and then figure out if it's a positive sentiment and negative sentiment. But the input distribution is more important because inputs are much longer than the label.

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