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README.md
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base_model: black-forest-labs/FLUX.1-dev
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# FLUX.1-dev-ControlNet-
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This repository contains an unified ControlNet for FLUX.1-dev model jointly
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# Model Cards
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- This checkpoint is a Pro version of [FLUX.1-dev-Controlnet-Union](https://huggingface.co/InstantX/FLUX.1-dev-Controlnet-Union).
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- This model support 7 control modes, including canny (0), tile (1), depth (2), blur (3), pose (4), gray (5), low quality (6).
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- The recommended controlnet_conditioning_scale is 0.3-0.7.
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# Showcases
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# Inference
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```python
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```
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# Acknowledgements
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This project is sponsored by [Shakker AI](https://www.shakker.ai/). All copyright reserved.
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base_model: black-forest-labs/FLUX.1-dev
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# FLUX.1-dev-ControlNet-Union-Pro
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This repository contains an unified ControlNet for FLUX.1-dev model jointly released by researchers from [InstantX Team](https://huggingface.co/InstantX) and [Shakker Labs](https://huggingface.co/Shakker-Labs).
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# Model Cards
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- This checkpoint is a Pro version of [FLUX.1-dev-Controlnet-Union](https://huggingface.co/InstantX/FLUX.1-dev-Controlnet-Union).
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- This model support 7 control modes, including canny (0), tile (1), depth (2), blur (3), pose (4), gray (5), low quality (6).
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- The recommended controlnet_conditioning_scale is 0.3-0.7.
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- This model can be jointly used with other ControlNets.
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# Showcases
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# Inference
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Please install `diffusers` from the source, as the PR has not been included in currently released version yet.
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# Multi-Controls Inference
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```python
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import torch
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from diffusers.utils import load_image
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from diffusers import FluxControlNetPipeline, FluxControlNetModel, FluxMultiControlNetModel
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base_model = 'black-forest-labs/FLUX.1-dev'
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controlnet_model_union = './Shakker-Labs/FLUX.1-dev-Controlnet-Union'
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controlnet_union = FluxControlNetModel.from_pretrained(controlnet_model_union, torch_dtype=torch.bfloat16)
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controlnet = FluxMultiControlNetModel([controlnet_union]) # we always recommend loading via FluxMultiControlNetModel
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pipe = FluxControlNetPipeline.from_pretrained(base_model, controlnet=controlnet, torch_dtype=torch.bfloat16)
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pipe.to("cuda")
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prompt = 'a young girl'
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control_image_depth = load_image("https://huggingface.co/InstantX/FLUX.1-dev-Controlnet-Union/resolve/main/images/depth.jpg")
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control_mode_depth = 2
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control_image_canny = load_image("https://huggingface.co/InstantX/FLUX.1-dev-Controlnet-Union/resolve/main/images/canny.jpg")
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control_mode_canny = 0
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width, height = control_image.size
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image = pipe(
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prompt,
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control_image=[control_image_depth, control_image_canny],
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control_mode=[control_mode_depth, control_mode_canny],
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width=width,
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height=height,
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controlnet_conditioning_scale=[0.5, 0.5],
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num_inference_steps=24,
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guidance_scale=3.5,
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generator=torch.manual_seed(42),
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).images[0]
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```
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We also support loading multiple ControlNets as before, you can load as
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```python
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controlnet_model_union = './Shakker-Labs/FLUX.1-dev-Controlnet-Union'
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controlnet_union = FluxControlNetModel.from_pretrained(controlnet_model_union, torch_dtype=torch.bfloat16)
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controlnet_model_depth = './Shakker-Labs/FLUX.1-dev-Controlnet-Depth'
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controlnet_depth = FluxControlNetModel.from_pretrained(controlnet_model_depth, torch_dtype=torch.bfloat16)
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controlnet = FluxMultiControlNetModel([controlnet_union, controlnet_depth])
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```
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# Acknowledgements
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This project is trained by [InstantX Team](https://huggingface.co/InstantX) and sponsored by [Shakker AI](https://www.shakker.ai/). All copyright reserved.
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