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MCG-NJU/VFIMamba
VFIMamba is a machine learning model from MCG-NJU. Use it for the machine learning task on the model card, and read the license before you ship it in a product. It is set up for vfi-mamba. The card lists the license as apache-2.0.
This is the official checkpoint library for VFIMamba: Video Frame Interpolation with State Space Models. Please refer to this repository for our code.
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From the Hugging Face model README
This is the official checkpoint library for VFIMamba: Video Frame Interpolation with State Space Models. Please refer to this repository for our code.
VFIMamba is the first approach to adapt the SSM model to the video frame interpolation task.
Experimental results demonstrate that VFIMamba achieves the state-of-the-art performance across various datasets, in particular highlighting the potential of the SSM model for VFI tasks with high resolution.
We provide two models, an efficient version (VFIMamba-S) and a stronger one (VFIMamba). You can choose what you need by specifying the parameter model.
Please refer to the instruction here for manually loading the checkpoints and a more customized experience.
python demo_2x.py --model **model[VFIMamba_S/VFIMamba]** # for 2x interpolation
python demo_Nx.py --n 8 --model **model[VFIMamba_S/VFIMamba]** # for 8x interpolation
For Hugging Face demo, please refer to the code here.
python hf_demo_2x.py --model **model[VFIMamba_S/VFIMamba]** # for 2x interpolation
If you think this project is helpful in your research or for application, please feel free to leave a star⭐️ and cite our paper:
@misc{zhang2024vfimambavideoframeinterpolation,
title={VFIMamba: Video Frame Interpolation with State Space Models},
author={Guozhen Zhang and Chunxu Liu and Yutao Cui and Xiaotong Zhao and Kai Ma and Limin Wang},
year={2024},
eprint={2407.02315},
archivePrefix={arXiv},
primaryClass={cs.CV},
url={https://arxiv.org/abs/2407.02315},
}