Update README.md
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README.md
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@@ -54,10 +54,11 @@ model.requires_grad_(False).cuda().eval()
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img0_path = r"_data\example_images\frame1.png"
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img2_path = r"_data\example_images\frame3.png"
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transforms = Compose([
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Resize((256, 448)),
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ToTensor(),
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Normalize(mean=
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])
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img0 = transforms(Image.open(img0_path).convert("RGB")).unsqueeze(0).cuda()
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@@ -68,10 +69,10 @@ img1 = model.reverse_process([img0, img2], tau)
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plt.figure(figsize=(10, 5))
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plt.subplot(1, 3, 1)
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plt.imshow(denorm(img0, mean=
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plt.subplot(1, 3, 2)
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plt.imshow(denorm(img1, mean=
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plt.subplot(1, 3, 3)
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plt.imshow(denorm(img2, mean=
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plt.show()
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```
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img0_path = r"_data\example_images\frame1.png"
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img2_path = r"_data\example_images\frame3.png"
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mean = std = [0.5]*3
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transforms = Compose([
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Resize((256, 448)),
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ToTensor(),
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Normalize(mean=mean, std=std),
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])
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img0 = transforms(Image.open(img0_path).convert("RGB")).unsqueeze(0).cuda()
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plt.figure(figsize=(10, 5))
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plt.subplot(1, 3, 1)
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plt.imshow(denorm(img0, mean=mean, std=std).squeeze().permute(1, 2, 0).cpu().numpy())
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plt.subplot(1, 3, 2)
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plt.imshow(denorm(img1, mean=mean, std=std).squeeze().permute(1, 2, 0).cpu().numpy())
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plt.subplot(1, 3, 3)
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plt.imshow(denorm(img2, mean=mean, std=std).squeeze().permute(1, 2, 0).cpu().numpy())
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plt.show()
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```
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