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Nicholas Turner
@nicholasturner0
Research Scientist - ML, Mechanistic Interpretability, Neuroscience ||| Tweets do not represent the views of my employer ||| he/him
368 Following    461 Followers
Even if we have ways to break up neural networks into interpretable parts, the largest weights between those parts can be confusing. Why is that? In our new research note, we study the *weight* superposition that causes interference weights.
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