Training in progress, step 3050
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README.md
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[](https://colab.research.google.com/#fileId=https://huggingface.co/eltorio/IDEFICS3_ROCO/blob/main/ROCO-idefics3.ipynb)
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## Star the project
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**If you appreciate my work, please consider giving it a star! 🤩**
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**I'm also looking for donations of free GPU time to complete the fine-tuning process.**
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**Please contact me if you can help! 🙏**
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## A Fine-tuned Radiology-focused Model based on Hugging Face's Idefics3 Model
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This repository contains a fine-tuned version of the Hugging Face [Idefics3-8B-Llama3](https://huggingface.co/HuggingFaceM4/Idefics3-8B-Llama3) model, built on top of the Meta Llama 3.1 8B architecture. Our model, `IDEFICS3_ROCO`, has been fine-tuned on the [Radiology Objects in Context (ROCO)](https://huggingface.co/datasets/eltorio/ROCO-radiology) dataset, a large-scale medical and multimodal imaging collection.
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### Training Progress Status
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* Current checkpoint:
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* Estimated remaining GPU time: ~57 hours
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* Hardware requirements: T4 GPU with >16GB VRAM
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* Last update: november, 8th 2024
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2. **Getting Started**
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* Fork the repository
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* Resume from checkpoint
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* Follow instructions in [ROCO-idefics3.ipynb](https://huggingface.co/eltorio/IDEFICS3_ROCO/blob/main/ROCO-idefics3.ipynb) [](https://colab.research.google.com/#fileId=https://huggingface.co/eltorio/IDEFICS3_ROCO/blob/main/ROCO-idefics3.ipynb)
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3. **Contact**
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### Docker Image
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A AI training docker image is available for this model. The image and includes all necessary dependencies to run the fine-tuning process.
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You need to set the `HF_TOKEN` environment variable to your Hugging Face API token.
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You also need to have NVidia Docker container runtime installed.
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Finnaly, you need to run the container with GPU support with `--gpus all` option.
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The image is available on Docker Hub:
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```bash
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docker run --gpus all --user=42420:42420 -e HF_TOKEN=$HF_TOKEN -it sctg/roco-idefics3:latest bash -i /start.sh $HF_TOKEN
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```
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The Dockerfile is available in the [IDEFICS_ROCO repository](https://huggingface.co/eltorio/IDEFICS3_ROCO/blob/main/Dockerfile).
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[](https://colab.research.google.com/#fileId=https://huggingface.co/eltorio/IDEFICS3_ROCO/blob/main/ROCO-idefics3.ipynb)
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## A Fine-tuned Radiology-focused Model based on Hugging Face's Idefics3 Model
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This repository contains a fine-tuned version of the Hugging Face [Idefics3-8B-Llama3](https://huggingface.co/HuggingFaceM4/Idefics3-8B-Llama3) model, built on top of the Meta Llama 3.1 8B architecture. Our model, `IDEFICS3_ROCO`, has been fine-tuned on the [Radiology Objects in Context (ROCO)](https://huggingface.co/datasets/eltorio/ROCO-radiology) dataset, a large-scale medical and multimodal imaging collection.
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### Training Progress Status
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* Current checkpoint: 2350/12267 (~19% completed) (in branch bug-restart)
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* Estimated remaining GPU time: ~57 hours
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* Hardware requirements: T4 GPU with >16GB VRAM
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* Last update: november, 8th 2024
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2. **Getting Started**
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* Fork the repository
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* Resume from checkpoint 2350/12267 (in branch bug-restart)
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* Follow instructions in [ROCO-idefics3.ipynb](https://huggingface.co/eltorio/IDEFICS3_ROCO/blob/main/ROCO-idefics3.ipynb) [](https://colab.research.google.com/#fileId=https://huggingface.co/eltorio/IDEFICS3_ROCO/blob/main/ROCO-idefics3.ipynb)
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3. **Contact**
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### Docker Image
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A AI training docker image is available for this model. The image and includes all necessary dependencies to run the fine-tuning process. The image is available on Docker Hub:
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```bash
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docker run --user=42420:42420 -it sctg/roco-idefics3:latest /start.sh hf_TOKEN
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```
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The Dockerfile is available in the [IDEFICS_ROCO repository](https://huggingface.co/eltorio/IDEFICS3_ROCO/blob/main/Dockerfile).
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adapter_model.safetensors
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size 83950224
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