A little more info
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README.md
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## Usage
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```python
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from diffusers import ControlNetModel, StableDiffusionXLControlNetPipeline, AutoencoderKL
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from diffusers.utils import load_image
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![images_10)](./out_hug_lab_7.png)
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### Training
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#### Training data
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This checkpoint was first trained for 20,000 steps on laion 6a resized to a max minimum dimension of 384.
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It was then further trained for 20,000 steps on laion 6a resized to a max minimum dimension of 1024 and
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## Usage
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Make sure to first install the libraries:
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```bash
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pip install accelerate transformers opencv-python diffusers
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```
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And then we're ready to go:
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```python
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from diffusers import ControlNetModel, StableDiffusionXLControlNetPipeline, AutoencoderKL
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from diffusers.utils import load_image
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![images_10)](./out_hug_lab_7.png)
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To more details, check out the official documentation of [`StableDiffusionXLControlNetPipeline`](https://huggingface.co/docs/diffusers/main/en/api/pipelines/controlnet_sdxl).
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### Training
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Our training script was built on top of the official training script that we provide [here](https://github.com/huggingface/diffusers/blob/main/examples/controlnet/README_sdxl.md).
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#### Training data
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This checkpoint was first trained for 20,000 steps on laion 6a resized to a max minimum dimension of 384.
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It was then further trained for 20,000 steps on laion 6a resized to a max minimum dimension of 1024 and
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