Doctor-Shotgun
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README.md
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---
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language:
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- en
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---
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## Information
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This is a Exl2 quantized version of [Norobara-ZLoss-8x7B](https://huggingface.co/Doctor-Shotgun/Norobara-ZLoss-8x7B)
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Please refer to the original creator for more information.
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Calibration dataset: Exllamav2 default
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## Branches:
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- main: Measurement files
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- 3.5bpw-h6: 3.5 bits per weight, 6 head bits, for 24gb VRAM
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- 6.0bpw-h6: 6 bits per weight, 6 head bits, for 48gb VRAM
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## Notes
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- 6.0bpw-h6 is recommended for the best quality to vram usage ratio (assuming you have enough vram).
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- Please ask for more bpws in the community tab if necessary.
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## Run in TabbyAPI
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TabbyAPI is a pure exllamav2 FastAPI server developed by us. You can find TabbyAPI's source code here: [https://github.com/theroyallab/TabbyAPI](https://github.com/theroyallab/TabbyAPI)
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If you don't have huggingface-cli, please run `pip install huggingface_hub`.
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To run this model, follow these steps:
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1. Make a directory inside your models folder called `Norobara-ZLoss-8x7B-exl2`
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2. Open a terminal inside your models folder
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3. Run `huggingface-cli download royallab/Norobara-ZLoss-8x7B-exl2 --revision 6.0bpw-h6 --local-dir Norobara-ZLoss-8x7B-exl2 --local-dir-use-symlinks False`
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1. The `--revision` flag corresponds to the branch name on the model repo. Please select the appropriate bpw branch for your system.
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4. Inside TabbyAPI's config.yml, set `model_name` to `Norobara-ZLoss-8x7B-exl2` or you can use the `/model/load` endpoint after launching.
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5. Launch TabbyAPI inside your python env by running `python main.py`
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## Donate?
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All my infrastructure and cloud expenses are paid out of pocket. If you'd like to donate, you can do so here: https://ko-fi.com/doctorshotgun
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You should not feel obligated to donate, but if you do, I'd appreciate it.
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---
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