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---
license: mit
---
![header](./assets/header.png)
<p align="center">
📃 <a href="" target="_blank">Paper</a> • 🌐 <a href="" target="_blank">Demo</a> • 🤗 <a href="https://huggingface.co./FreedomIntelligence/LongLLaVA" target="_blank">LongLLaVA</a>
</p>
![efficiency](./assets/singleGPU.png)
## 🌈 Update
* **[2024.09.05]** LongLLaVA repo is published!🎉 The Code will
## Architecture
<details>
<summary>Click to view the architecture image</summary>
![Architecture Image](./assets/arch.png)
</details>
## Results
<details>
<summary>Click to view the Results</summary>
- Main Results
![Main Results](./assets/result1.png)
- Diagnostic Results
![Diagnostic Results](./assets/diaresult.png)
- Video-NIAH
![Video-NIAH](./assets/NIAH.png)
</details>
## Results reproduction
### Data DownLoad and Construction
<details>
<summary>Dataset Taxonomy</summary>
![Dataset](./assets/dataset.png)
</details>
<details>
<summary>Dataset DownLoading and Construction</summary>
> Coming Soon~
</details>
### Training
> Coming Soon~
- Stage I: Single-image Alignment.
```bash
bash Pretrain.sh
```
- Stage II: Single-image Instruction-tuning.
```bash
bash SingleImageSFT.sh
```
- Stage III: Multi-image Instruction-tuning.
```bash
bash MultiImageSFT.sh
```
### Evaluation
> Coming Soon~
```bash
bash Eval.sh
```
## TO DO
- [ ] Release Model Evalation Code
- [ ] Release Data Construction Code
- [ ] Release Model Training Code
## Acknowledgement
- [LLaVA](https://github.com/haotian-liu/LLaVA): Visual Instruction Tuning (LLaVA) built towards GPT-4V level capabilities and beyond.
## Citation
```
@misc{wang2024longllavascalingmultimodalllms,
title={LongLLaVA: Scaling Multi-modal LLMs to 1000 Images Efficiently via Hybrid Architecture},
author={Xidong Wang and Dingjie Song and Shunian Chen and Chen Zhang and Benyou Wang},
year={2024},
eprint={2409.02889},
archivePrefix={arXiv},
primaryClass={cs.CL},
url={https://arxiv.org/abs/2409.02889},
}
``` |