Update unsuper.
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@ -115,43 +115,27 @@ for epoch in range(epochs):
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images = images.to(device)
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outputs = model.forward_unsuper(images)
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# outputs = outputs.permute(0, 2, 3, 1) # 64 8 24 24 -> 64 24 24 8
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# sample = outputs.reshape(-1, outputs.shape[3]) # -> 36864 8
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# abs = torch.abs(sample)
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# max, max_index = torch.max(abs, dim=1)
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# min, min_index = torch.min(abs, dim=1)
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# label = sample * 0.9
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# all = range(0, label.shape[0])
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# label[all, max_index] = label[all, max_index]*1.1
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# loss = F.l1_loss(sample, label)
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# model.conv1.weight.grad = None
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# loss.backward()
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outputs = outputs.permute(0, 2, 3, 1) # 64 8 24 24 -> 64 24 24 8
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sample = outputs.reshape(outputs.shape[0], -1, outputs.shape[3]) # -> 64 24x24 8
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sample = outputs.reshape(-1, outputs.shape[3]) # -> 36864 8
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abs = torch.abs(sample)
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sum = torch.sum(abs, dim=1, keepdim=False)
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max, max_index = torch.max(sum, dim=1)
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max, max_index = torch.max(abs, dim=1)
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label = sample * 0.9
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all = range(0, label.shape[0])
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all_wh = range(0, 24 * 24)
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label[all, :, max_index] = label[all, :, max_index] * 1.1
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label[all, max_index] = label[all, max_index] * 1.1
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loss = F.l1_loss(sample, label)
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model.conv1.weight.grad = None
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loss.backward()
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# show.DumpTensorToImage(images.view(-1, images.shape[2], images.shape[3]), "input_image.png", Contrast=[0, 1.0])
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# w = model.conv1.weight.data
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# show.DumpTensorToImage(w.view(-1, w.shape[2], w.shape[3]), "conv1_weight.png", Contrast=[-1.0, 1.0])
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# w = model.conv1.weight.grad
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# show.DumpTensorToImage(w.view(-1, w.shape[2], w.shape[3]).cpu(), "conv1_weight_grad.png")
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model.conv1.weight.data = model.conv1.weight.data - model.conv1.weight.grad * 1000
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# w = model.conv1.weight.data
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# show.DumpTensorToImage(w.view(-1, w.shape[2], w.shape[3]), "conv1_weight_update.png", Contrast=[-1.0, 1.0])
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model.conv1.weight.data = model.conv1.weight.data - model.conv1.weight.grad * 100
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if (i + 1) % 100 == 0:
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print(f"Epoch [{epoch+1}/{epochs}], Step [{i+1}/{n_total_steps}], Loss: {loss.item():.8f}")
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w = model.conv1.weight.grad
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show.DumpTensorToImage(w.view(-1, w.shape[2], w.shape[3]).cpu(), "conv1_weight_grad.png")
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w = model.conv1.weight.data
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show.DumpTensorToImage(w.view(-1, w.shape[2], w.shape[3]), "conv1_weight_update.png", Contrast=[-1.0, 1.0])
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# Train the model
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model.conv1.weight.requires_grad = False
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model.conv2.weight.requires_grad = True
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