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pipeline_tag: image-to-video |
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<p align="center"> |
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<img src="./demos/demo-01.gif" width="70%" /> |
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<img src="./demos/demo-02.gif" width="70%" /> |
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<img src="./demos/demo-03.gif" width="70%" /> |
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</p> |
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<p align="center">Samples generated by AnimateLCM-SVD-xt</p> |
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## Introduction |
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Consistency Distilled [Stable Video Diffusion Image2Video-XT (SVD-xt)](https://huggingface.co/stabilityai/stable-video-diffusion-img2vid-xt) following the strategy proposed in [AnimateLCM-paper](https://arxiv.org/abs/2402.00769). |
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AnimateLCM-SVD-xt can generate good quality image-conditioned videos with 25 frames in 2~8 steps with 576x1024 resolutions. |
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## Computation comparsion |
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AnimateLCM-SVD-xt can generally produces demos with good quality in 4 steps without requiring the classifier-free guidance, and therefore can save 25 x 2 / 4 = 12.5 times compuation resources compared with normal SVD models. |
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## Demos |
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| :---: | :---: | :---: | |
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| ![Alt text 1](./demos/01-2.gif) | ![Alt text 2](./demos/01-4.gif) | ![Alt text 3](./demos/01-8.gif) | |
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| 2 steps, cfg=1 | 4 steps, cfg=1 | 8 steps, cfg=1 | |
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| ![Alt text 1](./demos/02-2.gif) | ![Alt text 2](./demos/02-4.gif) | ![Alt text 3](./demos/02-8.gif) | |
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| 2 steps, cfg=1 | 4 steps, cfg=1 | 8 steps, cfg=1 | |
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| ![Alt text 1](./demos/03-2.gif) | ![Alt text 2](./demos/03-4.gif) | ![Alt text 3](./demos/03-8.gif) | |
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| 2 steps, cfg=1 | 4 steps, cfg=1 | 8 steps, cfg=1 | |
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| ![Alt text 1](./demos/04-2.gif) | ![Alt text 2](./demos/04-4.gif) | ![Alt text 3](./demos/04-8.gif) | |
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| 2 steps, cfg=1 | 4 steps, cfg=1 | 8 steps, cfg=1 | |
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| ![Alt text 1](./demos/05-2.gif) | ![Alt text 2](./demos/05-4.gif) | ![Alt text 3](./demos/05-8.gif) | |
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| 2 steps, cfg=1 | 4 steps, cfg=1 | 8 steps, cfg=1 | |
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Please contact Fu-Yun Wang (fywang@link.cuhk.edu.hk) for the inference code and the scheduler design. I might respond a bit later. Thank you! |