Model Card: LLaVA_MORE-llama_3_1-8B-S2-siglip-finetuning

LLaVA-MORE enhances the well-known LLaVA architecture by integrating the use of LLaMA 3.1 as the language model. We are publicly releasing the checkpoints for stages one and two for the first model with 8B parameters.

In this model space, you will find the stage two (finetuning) weights of LLaVA-MORE LLaMA 3.1 8B.

For more information, visit our LLaVA-MORE repository.

Inference

You can try our LLaVA-MORE in the Image-To-Text task by cloning our repository and running the following script.

python -u llava/eval/run_llava.py --model-path "aimagelab/LLaVA_MORE-llama_3_1-8B-S2-siglip-finetuning"

Citation

If you make use of our work, please cite our repo:

@article{cocchi2025llava,
      title={{LLaVA-MORE: A Comparative Study of LLMs and Visual Backbones for Enhanced Visual Instruction Tuning}},
      author={Cocchi, Federico and Moratelli, Nicholas and Caffagni, Davide and Sarto, Sara and Baraldi, Lorenzo and Cornia, Marcella and Cucchiara, Rita},
      journal={arXiv preprint arXiv:2503.15621},
      year={2025}
}
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8.49B params
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F32
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Dataset used to train aimagelab/LLaVA_MORE-llama_3_1-8B-S2-siglip-finetuning

Collection including aimagelab/LLaVA_MORE-llama_3_1-8B-S2-siglip-finetuning