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Update README.md

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@@ -66,7 +66,7 @@ steps), SDXL (50 inference steps), SDXL Turbo (1 inference step) and Würstchen
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  ## Code Example
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- For the code below to work, you have to install `diffusers` from this branch while the PR is WIP.
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  ```shell
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  pip install git+https://github.com/kashif/diffusers.git@wuerstchen-v3
@@ -77,11 +77,10 @@ import torch
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  from diffusers import StableCascadeDecoderPipeline, StableCascadePriorPipeline
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  device = "cuda"
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- dtype = torch.bfloat16
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  num_images_per_prompt = 2
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- prior = StableCascadePriorPipeline.from_pretrained("stabilityai/stable-cascade-prior", torch_dtype=dtype).to(device)
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- decoder = StableCascadeDecoderPipeline.from_pretrained("stabilityai/stable-cascade", torch_dtype=dtype).to(device)
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  prompt = "Anthropomorphic cat dressed as a pilot"
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  negative_prompt = ""
@@ -93,16 +92,18 @@ prior_output = prior(
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  negative_prompt=negative_prompt,
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  guidance_scale=4.0,
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  num_images_per_prompt=num_images_per_prompt,
 
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  )
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  decoder_output = decoder(
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- image_embeddings=prior_output.image_embeddings,
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  prompt=prompt,
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  negative_prompt=negative_prompt,
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  guidance_scale=0.0,
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  output_type="pil",
 
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  ).images
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- decoder_output
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  ```
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  ## Uses
 
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  ## Code Example
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+ **⚠️ Important**: For the code below to work, you have to install `diffusers` from this branch while the PR is WIP.
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  ```shell
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  pip install git+https://github.com/kashif/diffusers.git@wuerstchen-v3
 
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  from diffusers import StableCascadeDecoderPipeline, StableCascadePriorPipeline
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  device = "cuda"
 
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  num_images_per_prompt = 2
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+ prior = StableCascadePriorPipeline.from_pretrained("stabilityai/stable-cascade-prior", torch_dtype=torch.bfloat16).to(device)
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+ decoder = StableCascadeDecoderPipeline.from_pretrained("stabilityai/stable-cascade", torch_dtype=torch.float16).to(device)
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  prompt = "Anthropomorphic cat dressed as a pilot"
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  negative_prompt = ""
 
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  negative_prompt=negative_prompt,
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  guidance_scale=4.0,
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  num_images_per_prompt=num_images_per_prompt,
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+ num_inference_steps=20
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  )
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  decoder_output = decoder(
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+ image_embeddings=prior_output.image_embeddings.half(),
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  prompt=prompt,
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  negative_prompt=negative_prompt,
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  guidance_scale=0.0,
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  output_type="pil",
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+ num_inference_steps=10
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  ).images
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+ #Now decoder_output is a list with your PIL images
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  ```
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  ## Uses