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| # Wan | |
| ## Training | |
| For LoRA training, specify `--training_type lora`. For full finetuning, specify `--training_type full-finetune`. | |
| Examples available: | |
| - [PIKA crush effect](../../examples/training/sft/wan/crush_smol_lora/) | |
| - [3DGS dissolve](../../examples/training/sft/wan/3dgs_dissolve/) | |
| To run an example, run the following from the root directory of the repository (assuming you have installed the requirements and are using Linux/WSL): | |
| ```bash | |
| chmod +x ./examples/training/sft/wan/crush_smol_lora/train.sh | |
| ./examples/training/sft/wan/crush_smol_lora/train.sh | |
| ``` | |
| On Windows, you will have to modify the script to a compatible format to run it. [TODO(aryan): improve instructions for Windows] | |
| ## Inference | |
| Assuming your LoRA is saved and pushed to the HF Hub, and named `my-awesome-name/my-awesome-lora`, we can now use the finetuned model for inference: | |
| ```diff | |
| import torch | |
| from diffusers import WanPipeline | |
| from diffusers.utils import export_to_video | |
| pipe = WanPipeline.from_pretrained( | |
| "Wan-AI/Wan2.1-T2V-1.3B-Diffusers", torch_dtype=torch.bfloat16 | |
| ).to("cuda") | |
| + pipe.load_lora_weights("my-awesome-name/my-awesome-lora", adapter_name="wan-lora") | |
| + pipe.set_adapters(["wan-lora"], [0.75]) | |
| video = pipe("<my-awesome-prompt>").frames[0] | |
| export_to_video(video, "output.mp4", fps=8) | |
| ``` | |
| You can refer to the following guides to know more about the model pipeline and performing LoRA inference in `diffusers`: | |
| * [Wan in Diffusers](https://huggingface.co/docs/diffusers/main/en/api/pipelines/wan) | |
| * [Load LoRAs for inference](https://huggingface.co/docs/diffusers/main/en/tutorials/using_peft_for_inference) | |
| * [Merge LoRAs](https://huggingface.co/docs/diffusers/main/en/using-diffusers/merge_loras) | |