3min chapter

Machine Learning Street Talk (MLST) cover image

Neel Nanda - Mechanistic Interpretability

Machine Learning Street Talk (MLST)

CHAPTER

The Importance of Range Activation in Language Models

The first author wrote a paper called finding neurons in a haystack case studies with sparse probing where you empirically studied superposition and language models. You get lots of superpositions in early layers for features like the security and social security and fewer in middle layers for complex features such as this text is french. The second author was led by wes gurney one of my mentees did a fantastic job he deserves like nine percent of the credit great job wes  he listens to this podcast so hiUm and yeah so the kind of high level pitch behind the paper was there'll be things superposition is happening but like nobody's really checked very hard.

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