this post was submitted on 30 Jun 2023
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LocalLLaMA

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Community to discuss about LLaMA, the large language model created by Meta AI.

This is intended to be a replacement for r/LocalLLaMA on Reddit.

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[–] [email protected] 3 points 1 year ago (1 children)

I tried with WizardLM uncensored, but 8K seems to be too much for 4090, it runs out of VRAM and dies.

I also tried with just 4K, but that also seems to not work.

When I run it with 2K, it doesn't crash but the output is garbage.

[–] [email protected] 2 points 1 year ago (1 children)

I hope llama.cpp supports SuperHOT at some point. I never use GPTQ but may need to make an exception to try out the larger context sized. Are you using exllama? Curious why you’re getting garbage output

[–] [email protected] 1 points 1 year ago (1 children)

Yeah llama.cpp with SuperHOT support would be great, and yeah I'm using exllama with oobabooga UI. I found out why I'm getting garbage output with 2k. It seems like SuperHOT 8K models, when run with 2k context, have a massive increase in perplexity.

(Higher perplexity, the worse the output quality).

So I'll need to figure out if I can get at least 4K running without running out of VRAM.

Also, there is a new PR for exllama which uses a different method of getting higher context (not SuperHOT) and also has less perplexity loss. So that might be a better alternative potentially.

[–] [email protected] 1 points 1 year ago (1 children)

I read the guy’s blog post on SuperHOT and it sounded like it didn’t increase perplexity and kept perplexity super low with large contexts. I could have read it wrong but I thought it wasn’t supposed to increase perplexity.

[–] [email protected] 2 points 1 year ago

The increase in perplexity is very small, but there is still some with 8K content. But it seems like with 2K its much larger. I could be misunderstanding something myself. But my little test with 2K context does suggest there's something going on with 2K contexts on SuperHOT models