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| The vision language model in this video is 0.5B and can take in image, video and 3D! 🤯 Llava-NeXT-Interleave is a new vision language model trained on interleaved image, video and 3D data keep reading ⥥⥥ | |
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| This model comes with 0.5B, 7B and 7B-DPO variants, all can be used with Transformers 😍 | |
| [Collection of models](https://t.co/sZsaglSXa3) | [Demo](https://t.co/FbpaMWJY8k) | |
| See how to use below 👇🏻 | |
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| Authors of this paper have explored training Llava-NeXT on interleaved data where the data consists of multiple modalities, including image(s), video, 3D 📚 | |
| They have discovered that interleaved data increases results across all benchmarks! | |
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| The model can do task transfer from single image tasks to multiple images 🤯 The authors have trained the model on single images and code yet the model can solve coding with multiple images. | |
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| Same applies to other modalities, see below for video: | |
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| The model also has document understanding capabilities and many real-world application areas | |
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| This release also comes with the dataset this model was fine-tuned on 📖 [M4-Instruct-Data](https://t.co/rutXMtNC0I) | |
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| > [!TIP] | |
| Ressources: | |
| [LLaVA-NeXT: Tackling Multi-image, Video, and 3D in Large Multimodal Models](https://llava-vl.github.io/blog/2024-06-16-llava-next-interleave/) | |
| by Feng Li, Renrui Zhang*, Hao Zhang, Yuanhan Zhang, Bo Li, Wei Li, Zejun Ma, Chunyuan Li (2024) | |
| [GitHub](https://github.com/LLaVA-VL/LLaVA-NeXT/blob/inference/docs/LLaVA-NeXT-Interleave.md) | |
| > [!NOTE] | |
| [Original tweet](https://twitter.com/mervenoyann/status/1813560292397203630) (July 17, 2024) |