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# SD3 Controlnet |
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| raw | control image | output | |
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|<img src="./raw.jpg" width = "400" /> | <img src="./canny.jpg" width = "400" /> | <img src="./demo_1.jpg" width = "400" /> | |
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# Install Diffusers-SD3-Controlnet |
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The current [diffusers](https://github.com/instantX-research/diffusers_sd3_control.git) have not been merged into the official code yet. |
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```cmd |
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git clone -b sd3_control https://github.com/instantX-research/diffusers_sd3_control.git |
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cd diffusers_sd3_control |
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pip install -e . |
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``` |
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# Demo |
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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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import sys, os |
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sys.path.append('/path/diffusers/examples/community') |
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from pipeline_stable_diffusion_3_controlnet import StableDiffusion3CommonPipeline |
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# load pipeline |
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base_model = 'stabilityai/stable-diffusion-3-medium-diffusers' |
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pipe = StableDiffusion3CommonPipeline.from_pretrained( |
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base_model, |
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controlnet_list=['InstantX/SD3-Controlnet-Canny'] |
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) |
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pipe.to('cuda:0', torch.float16) |
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prompt = 'Anime style illustration of a girl wearing a suit. A moon in sky. In the background we see a big rain approaching. text "InstantX" on image' |
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n_prompt = 'NSFW, nude, naked, porn, ugly' |
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# controlnet config |
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controlnet_conditioning = [ |
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dict( |
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control_index=0, |
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control_image=load_image('https://huggingface.co/InstantX/SD3-Controlnet-Canny/resolve/main/canny.jpg'), |
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control_weight=0.7, |
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control_pooled_projections='zeros' |
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) |
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] |
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# infer |
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image = pipe( |
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prompt=prompt, |
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negative_prompt=n_prompt, |
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controlnet_conditioning=controlnet_conditioning, |
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num_inference_steps=28, |
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guidance_scale=7.0, |
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height=1024, |
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width=1024, |
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).images[0] |
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``` |
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