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7 points

While I agree that LLMs can achieve human-tier efficiency at most tasks eventually (some architectural changes will be necessary, but the core approach seems sound), it’s wrong to say it’s modeled after the human brain. We have no idea how brains work as they’re super complex, we’re building artificial neural networks from the ground up. AI uses centuries’ worth of math, but with our current maths knowledge the code isn’t too complicated. Human brains aren’t like that, they can’t be summed up in a few lines of code because DNA is a huge mess that contains so much more than just “learning”, so many inactive or redundant bits and pieces. We’re building LLMs with knowledge of how languages work, not how brains work.

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1 point

Transformers are not built with our knowledge of language. That’s a gross approximation – it would honestly be more accurate to say they’re modelled after the human brain than that they’re built with our understanding of language. A big problem is that the connection between AI and language is poorly understood – we can’t even understand what the word2vec axes are.

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1 point

i’m not talking about knowing about how humans perceive/learn languages, i’m talking about language structure. Perhaps it’s wrong to call it “how languages work”

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1 point

That’s what I meant, yes. They’re not built based on any linguistic field

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