Use LR data for image gradient prediction when HR data is disjoint
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@ -428,16 +428,22 @@ class SRGANModel(BaseModel):
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l_g_pix_log = l_g_pix / self.l_pix_w
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l_g_pix_log = l_g_pix / self.l_pix_w
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l_g_total += l_g_pix
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l_g_total += l_g_pix
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if self.spsr_enabled and self.cri_pix_grad: # gradient pixel loss
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if self.spsr_enabled and self.cri_pix_grad: # gradient pixel loss
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var_H_grad_nopadding = self.get_grad_nopadding(var_H)
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if self.disjoint_data:
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l_g_pix_grad = self.l_pix_grad_w * self.cri_pix_grad(fake_H_grad, var_H_grad_nopadding)
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grad_truth = self.get_grad_nopadding(var_L)
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grad_pred = F.interpolate(fake_H_grad, size=grad_truth.shape[2:], mode="nearest")
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else:
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grad_truth = self.get_grad_nopadding(var_H)
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grad_pred = fake_H_grad
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l_g_pix_grad = self.l_pix_grad_w * self.cri_pix_grad(grad_pred, grad_truth)
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l_g_total += l_g_pix_grad
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l_g_total += l_g_pix_grad
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if self.spsr_enabled and self.cri_pix_branch: # branch pixel loss
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if self.spsr_enabled and self.cri_pix_branch: # branch pixel loss
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grad_truth = self.get_grad_nopadding(var_L)
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if self.disjoint_data:
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downsampled_H_branch = fake_H_branch
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grad_truth = self.get_grad_nopadding(var_L)
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if grad_truth.shape != fake_H_branch.shape:
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grad_pred = F.interpolate(fake_H_branch, size=grad_truth.shape[2:], mode="nearest")
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downsampled_H_branch = F.interpolate(downsampled_H_branch, size=grad_truth.shape[2:], mode="nearest")
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else:
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l_g_pix_grad_branch = self.l_pix_branch_w * self.cri_pix_branch(downsampled_H_branch,
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grad_truth = self.get_grad_nopadding(var_H)
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grad_truth)
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grad_pred = fake_H_branch
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l_g_pix_grad_branch = self.l_pix_branch_w * self.cri_pix_branch(grad_pred, grad_truth)
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l_g_total += l_g_pix_grad_branch
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l_g_total += l_g_pix_grad_branch
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if self.fdpl_enabled and not using_gan_img:
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if self.fdpl_enabled and not using_gan_img:
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l_g_fdpl = self.cri_fdpl(fea_GenOut, pix)
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l_g_fdpl = self.cri_fdpl(fea_GenOut, pix)
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