Instructions here: https://github.com/ghobs91/Self-GPT

If you’ve ever wanted a ChatGPT-style assistant but fully self-hosted and open source, Self-GPT is a handy script that bundles Open WebUI (chat interface front end) with Ollama (LLM backend).

  • Privacy & Control: Unlike ChatGPT, everything runs locally, so your data stays with you—great for those concerned about data privacy.
  • Cost: Once set up, self-hosting avoids monthly subscription fees. You’ll need decent hardware (ideally a GPU), but there’s a range of model sizes to fit different setups.
  • Flexibility: Open WebUI and Ollama support multiple models and let you switch between them easily, so you’re not locked into one provider.
  • The Hobbyist@lemmy.zip
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    2 months ago

    whats great is that with ollama and webui, you can as easily run it all on one computer locally using the open-webui pip package or in a remote server using the container version of open-webui.

    Ive run both and the webui is really well done. It offers a number of advanced options, like the system prompt but also memory features, documents for RAG and even a built in python ide for when you want to execute python functions. You can even enable web browsing for your model.

    I’m personally very pleased with open-webui and ollama and they both work wonders together. Hoghly recommend it! And the latest llama3.1 (in 8 and 70B variants) and llama3.2 (in 1 and 3B variants) work very well, even on CPU only, for the latter! Give it a shot, it is so easy to set up :)

      • The Hobbyist@lemmy.zip
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        2 months ago

        I wish I could. I have an RTX 3060 12GB, I run mostly llama3.1 8B versions in fp8, at 30-35 tokens/s.

        • camilobotero@feddit.dk
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          2 months ago

          I can confirm that it does not run (at least not smoothly) with an Nvidia 4080 12Gb. However, gemma2:27B runs pretty well. Do you think if we add another graphical card, a modest one, maybe the llama3.1:70B could run?

          • brucethemoose@lemmy.world
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            2 months ago

            No, but you can run Qwen 2.5 34B with 24GB total.

            Host it in TabbyAPI instead of ollama too. Use its native tensor parallelism and Q4 cache, it will fly.

    • jonno@discuss.tchncs.de
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      2 months ago

      Are you running these llms in containers completely cut off from the internet? My understanding was that the “local first” llms aren’t truly offline and only try and answer base queries offline before contacting their provider for support. This invalidating the privacy argument.

      • voracitude@lemmy.world
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        2 months ago

        Where would an open source LLM that you run locally phone home to, exactly? It requires a lot of GPU compute, do you think someone’s just going to give that away for free, without even requiring an account they can turn into saleable data?

        But wait, there’s an even better way to be sure: download OpenHardwareMonitor so you can watch your GPU go to 100%, and this or GPT4All or something. Then airgap your computer, and try it yourself.

      • The Hobbyist@lemmy.zip
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        2 months ago

        The interface called open-webui can run in a container, but ollama runs as a service on your system, from my understanding.

        The models are local and only answer queries by default. It all happens on the system without any additional tools. Now, if you want to give them internet access, you can, it is an option you have to setup and open-webui makes that possible though I have not tried it myself. I just see it.

        I have never heard of any llm “answer base queries offline before contacting their provider for support”. It’s almost impossible for the LLM to do it by itself without you setting things up for it that way.

  • Aeri@lemmy.world
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    2 months ago

    I just want one that won’t just be like “I"m sowwy miss I can’t talk about that 🥺”

      • BluesF@lemmy.world
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        2 months ago

        I made a robot which is delighted about the idea of overthrowing capitalism and will enthusiastically explain how to take down your government.

  • Nickm8@lemmy.world
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    2 months ago

    Have been using it a while now, I recommend using something like Tailscale so you can access it from anywhere on your phone. I also have a raspberry pi that can wake up my main machine when I need it.

  • rsolva@lemmy.world
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    2 months ago

    I have been running this for a year on my old HP EliteDesk 800 SFF (G2) with 64GB RAM, and it performes great on the smallest models (up til 8B) only on CPU. I run Ollama and OpenWebUI in containers/LXC in Proxmox. It’s not as smart as ChatGPT, but it can be suprisingly capable for everyday tasks!

  • Player2@lemm.ee
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    2 months ago

    Wish I could accelerate these models with an Intel Arc card, unfortunately Ollama seems to only support Nvidia

    • Possibly linux@lemmy.zip
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      2 months ago

      And AMD

      You should be able to get llama.cpp to run on Arc but I’m not sure what performance you will get. It may not be worth it.

  • Nexy@lemmy.sdf.org
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    2 months ago

    I didnt use any AI until I was able to host it localy. I hate the idea of training a model or how that data centers consumes so much water and resouses. Also I dont use any AI generative of images. Is not etic for me. But I’m trying to find a way to make ollama a tool I can use somehow, and not just a thing to talk sometimes for fun.

    • Gumus@lemmy.world
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      2 months ago

      You realize the models you’re running locally had to be trained the same way as the proprietary ones, right?

      • Nexy@lemmy.sdf.org
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        2 months ago

        Yes, but is a copy of something that is already done. I’m not making new requests to a data center who is wasting 4 liters of water every 100 words like gpt-4, I’m just using my GPU like with a videogame.