this post was submitted on 23 Nov 2024
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Writing a 100-word email using ChatGPT (GPT-4, latest model) consumes 1 x 500ml bottle of water It uses 140Wh of energy, enough for 7 full charges of an iPhone Pro Max

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[–] bandwidthcrisis@lemmy.world 19 points 6 hours ago (4 children)

140Wh seems off.

It's possible to run an LLM on a moderately-powered gaming PC (even a Steam Deck).

Those consume power in the range of a few hundred watts and they can generate replies in a seconds, or maybe a minute or so. Power use throttles down when not actually working.

That means a home pc could generate dozens of email-sized texts an hour using a few hundred watt-hours.

I think that the article is missing some factor, such as how many parallel users the racks they're discussing can support.

[–] teh7077@lemmy.today 15 points 6 hours ago* (last edited 1 hour ago) (2 children)

That's what I always thought when reading this and other articles about the estimated power consumption of GPT-4. Run a decent 7B LLM on consumer hardware like the steam deck and you got your e-mail in a minute with the fans barely spinning up.

Then I read that GPT-4 is supposedly a 1760B model. (https://en.m.wikipedia.org/wiki/GPT-4#Background) I don't know how energy usage would scale with model size exactly, but I'd consider it plausible that we are talking orders of magnitude above the typical local LLM.

considering that the email by the local LLM will be good enough 99% of the time, GPT may just be horribly inefficient, in order to score higher in some synthetic benchmarks?

[–] douglasg14b@lemmy.world 9 points 3 hours ago (1 children)

Computational demands scale aggressively with model size.

And if you want a response back in a reasonable amount of time you're burning a ton of power to do so. These models are not fast at all.

[–] teh7077@lemmy.today 4 points 2 hours ago

Thanks for confirming my suspicion.

So, the whole debate about "environmental impact of AI" is not about generative AI as such at all. Really comes down to people using disproportionally large models for simple tasks that could be done just as well by smaller ones, run locally. Or worse yet, asking a behemoth model like GPT-4 about something that could and should have been a simple search engine query, which I (subjectively) feel has become a trend in everyday tech usage...

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