Spaces:
Running
on
Zero
Running
on
Zero
envs
Browse files
app.py
CHANGED
@@ -326,6 +326,7 @@ class ImageConductor:
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controlnet_images = rearrange(controlnet_images, "b f c h w -> b c f h w")
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num_controlnet_images = controlnet_images.shape[2]
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controlnet_images = rearrange(controlnet_images, "b c f h w -> (b f) c h w")
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controlnet_images = self.vae.encode(controlnet_images * 2. - 1.).latent_dist.sample() * 0.18215
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controlnet_images = rearrange(controlnet_images, "(b f) c h w -> b c f h w", f=num_controlnet_images)
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@@ -517,7 +518,8 @@ with block as demo:
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gr.Markdown(instructions)
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device = torch.device("cuda") if torch.cuda.is_available() else torch.device("cpu")
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unet_path = 'models/unet.ckpt'
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image_controlnet_path = 'models/image_controlnet.ckpt'
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flow_controlnet_path = 'models/flow_controlnet.ckpt'
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controlnet_images = rearrange(controlnet_images, "b f c h w -> b c f h w")
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num_controlnet_images = controlnet_images.shape[2]
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controlnet_images = rearrange(controlnet_images, "b c f h w -> (b f) c h w")
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+
self.vae.to(device)
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controlnet_images = self.vae.encode(controlnet_images * 2. - 1.).latent_dist.sample() * 0.18215
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controlnet_images = rearrange(controlnet_images, "(b f) c h w -> b c f h w", f=num_controlnet_images)
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gr.Markdown(instructions)
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# device = torch.device("cuda") if torch.cuda.is_available() else torch.device("cpu")
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device = torch.device("cuda")
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unet_path = 'models/unet.ckpt'
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image_controlnet_path = 'models/image_controlnet.ckpt'
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flow_controlnet_path = 'models/flow_controlnet.ckpt'
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