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pingoutoday at 1:59 PM3 repliesview on HN

Wouldn't improving LLM efficiency make them even more useful across the board, then they can enjoy the nice economies of scale?

The plan is to have LLM working completely autonomously, in that case, the more resources you have, the better. Perhaps people will use local LLM to ask questions, or coders use them for their personal projects, but that's not where the real money is.


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dualvariabletoday at 5:52 PM

The problem is that if the AI companies pass through the actual costs they're incurring, then charges to those companies will >10x.

If the companies don't see that kind of value (so LLMs don't become dramatically better in some kind of quantum leap from where they are now), they won't want to pay those costs. Already, most AI projects in corporations tend to fail.

If the efficiency of LLMs gets 10x better, then either corporations will "private cloud" their own AI or start using competitors that aren't carrying those kinds of debt loads from the "gold rush" phase.

m4rtinktoday at 6:35 PM

If it's efficient enough you just run it all locally & screw all the rent seekers who want to tell you how you can't use their model & who will sell and misuse all your data they capture.

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leothecooltoday at 6:54 PM

If apple puts an inference SOC in their phone, the datacenters are all dead.

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