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initialize StableDiffusion_1_Inpainting with a 9 channel SD1Unet if not provided
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@ -198,8 +198,14 @@ class StableDiffusion_1_Inpainting(StableDiffusion_1):
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) -> None:
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self.mask_latents: Tensor | None = None
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self.target_image_latents: Tensor | None = None
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unet = unet or SD1UNet(in_channels=9)
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super().__init__(
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unet=unet, lda=lda, clip_text_encoder=clip_text_encoder, solver=solver, device=device, dtype=dtype
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unet=unet,
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lda=lda,
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clip_text_encoder=clip_text_encoder,
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solver=solver,
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device=device,
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dtype=dtype,
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)
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def forward(
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@ -1,6 +1,8 @@
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import torch
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from PIL import Image
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from refiners.fluxion.utils import manual_seed, no_grad
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from refiners.foundationals.latent_diffusion import StableDiffusion_1_Inpainting
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from refiners.foundationals.latent_diffusion.model import LatentDiffusionModel
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@ -12,3 +14,18 @@ def test_sample_noise():
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latents_1 = LatentDiffusionModel.sample_noise(size=(1, 4, 64, 64), offset_noise=0.0)
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assert torch.allclose(latents_0, latents_1, atol=1e-6, rtol=0)
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@no_grad()
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def test_sd1_inpainting(test_device: torch.device) -> None:
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sd = StableDiffusion_1_Inpainting(device=test_device)
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latent_noise = torch.randn(1, 4, 64, 64, device=test_device)
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target_image = Image.new("RGB", (512, 512))
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mask = Image.new("L", (512, 512))
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sd.set_inpainting_conditions(target_image=target_image, mask=mask)
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text_embedding = sd.compute_clip_text_embedding("")
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output = sd(latent_noise, step=0, clip_text_embedding=text_embedding)
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assert output.shape == (1, 4, 64, 64)
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