3min chapter

Machine Learning Street Talk (MLST) cover image

Neel Nanda - Mechanistic Interpretability

Machine Learning Street Talk (MLST)

CHAPTER

The Paradox of GPT

Kenneth: Learning that something is French seems categorically different from learning some structure and representations. Kenneth: One of the reasons why people like Gary Marcus say gpt is parasitic on the data they say because they are empirical models most of the meaningmost of the information is not in the data if we have to reason over explicit world model so he thinks the reason a gps is so good is because we've imputed this abstract world model. He would argue that the information about that abstract world model doesn't exist in any data but how do you go from the data to the model? And i'm just like you can't write poetry with statistical correlations you need to be learning something maybe that

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