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https://github.com/wassname/denoising-diffusion-pytorch.git
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eba44498d1 | ||
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12f95b33d8 |
@@ -89,16 +89,15 @@ def Downsample(dim, dim_out = None):
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return nn.Conv2d(dim, default(dim_out, dim), 4, 2, 1)
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return nn.Conv2d(dim, default(dim_out, dim), 4, 2, 1)
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class LayerNorm(nn.Module):
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class LayerNorm(nn.Module):
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def __init__(self, dim, eps = 1e-5):
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def __init__(self, dim):
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super().__init__()
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super().__init__()
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self.eps = eps
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self.g = nn.Parameter(torch.ones(1, dim, 1, 1))
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self.g = nn.Parameter(torch.ones(1, dim, 1, 1))
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self.b = nn.Parameter(torch.zeros(1, dim, 1, 1))
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def forward(self, x):
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def forward(self, x):
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eps = 1e-5 if x.dtype == torch.float32 else 1e-3
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var = torch.var(x, dim = 1, unbiased = False, keepdim = True)
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var = torch.var(x, dim = 1, unbiased = False, keepdim = True)
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mean = torch.mean(x, dim = 1, keepdim = True)
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mean = torch.mean(x, dim = 1, keepdim = True)
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return (x - mean) / (var + self.eps).sqrt() * self.g + self.b
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return (x - mean) * (var + eps).rsqrt() * self.g
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class PreNorm(nn.Module):
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class PreNorm(nn.Module):
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def __init__(self, dim, fn):
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def __init__(self, dim, fn):
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@@ -211,6 +210,8 @@ class LinearAttention(nn.Module):
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k = k.softmax(dim = -1)
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k = k.softmax(dim = -1)
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q = q * self.scale
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q = q * self.scale
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v = v / (h * w)
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context = torch.einsum('b h d n, b h e n -> b h d e', k, v)
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context = torch.einsum('b h d n, b h e n -> b h d e', k, v)
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out = torch.einsum('b h d e, b h d n -> b h e n', context, q)
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out = torch.einsum('b h d e, b h d n -> b h e n', context, q)
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@@ -3,7 +3,7 @@ from setuptools import setup, find_packages
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setup(
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setup(
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name = 'denoising-diffusion-pytorch',
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name = 'denoising-diffusion-pytorch',
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packages = find_packages(),
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packages = find_packages(),
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version = '0.26.3',
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version = '0.26.5',
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license='MIT',
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license='MIT',
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description = 'Denoising Diffusion Probabilistic Models - Pytorch',
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description = 'Denoising Diffusion Probabilistic Models - Pytorch',
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author = 'Phil Wang',
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author = 'Phil Wang',
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