mirror of
https://github.com/wassname/denoising-diffusion-pytorch.git
synced 2026-09-12 12:22:11 +08:00
Compare commits
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8c3609a6e3 | ||
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1586d1a8a0 | ||
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b4fb8804d2 | ||
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9fd05f1b1f | ||
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ec2397f0ba |
@@ -125,7 +125,7 @@ class ContinuousTimeGaussianDiffusion(nn.Module):
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p2_loss_weight_k = 1
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p2_loss_weight_k = 1
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):
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):
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super().__init__()
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super().__init__()
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assert not denoise_fn.sinusoidal_cond_mlp
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assert denoise_fn.learned_sinusoidal_cond
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self.denoise_fn = denoise_fn
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self.denoise_fn = denoise_fn
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@@ -19,6 +19,8 @@ from tqdm import tqdm
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from einops import rearrange, reduce
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from einops import rearrange, reduce
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from einops.layers.torch import Rearrange
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from einops.layers.torch import Rearrange
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from ema_pytorch import EMA
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# helpers functions
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# helpers functions
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def exists(x):
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def exists(x):
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@@ -50,21 +52,6 @@ def unnormalize_to_zero_to_one(t):
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# small helper modules
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# small helper modules
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class EMA():
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def __init__(self, beta):
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super().__init__()
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self.beta = beta
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def update_model_average(self, ma_model, current_model):
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for current_params, ma_params in zip(current_model.parameters(), ma_model.parameters()):
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old_weight, up_weight = ma_params.data, current_params.data
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ma_params.data = self.update_average(old_weight, up_weight)
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def update_average(self, old, new):
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if old is None:
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return new
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return old * self.beta + (1 - self.beta) * new
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class Residual(nn.Module):
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class Residual(nn.Module):
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def __init__(self, fn):
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def __init__(self, fn):
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super().__init__()
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super().__init__()
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@@ -73,20 +60,6 @@ class Residual(nn.Module):
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def forward(self, x, *args, **kwargs):
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def forward(self, x, *args, **kwargs):
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return self.fn(x, *args, **kwargs) + x
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return self.fn(x, *args, **kwargs) + x
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class SinusoidalPosEmb(nn.Module):
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def __init__(self, dim):
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super().__init__()
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self.dim = dim
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def forward(self, x):
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device = x.device
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half_dim = self.dim // 2
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emb = math.log(10000) / (half_dim - 1)
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emb = torch.exp(torch.arange(half_dim, device=device) * -emb)
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emb = x[:, None] * emb[None, :]
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emb = torch.cat((emb.sin(), emb.cos()), dim=-1)
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return emb
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def Upsample(dim):
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def Upsample(dim):
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return nn.ConvTranspose2d(dim, dim, 4, 2, 1)
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return nn.ConvTranspose2d(dim, dim, 4, 2, 1)
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@@ -115,6 +88,39 @@ class PreNorm(nn.Module):
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x = self.norm(x)
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x = self.norm(x)
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return self.fn(x)
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return self.fn(x)
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# sinusoidal positional embeds
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class SinusoidalPosEmb(nn.Module):
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def __init__(self, dim):
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super().__init__()
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self.dim = dim
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def forward(self, x):
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device = x.device
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half_dim = self.dim // 2
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emb = math.log(10000) / (half_dim - 1)
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emb = torch.exp(torch.arange(half_dim, device=device) * -emb)
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emb = x[:, None] * emb[None, :]
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emb = torch.cat((emb.sin(), emb.cos()), dim=-1)
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return emb
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class LearnedSinusoidalPosEmb(nn.Module):
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""" following @crowsonkb 's lead with learned sinusoidal pos emb """
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""" https://github.com/crowsonkb/v-diffusion-jax/blob/master/diffusion/models/danbooru_128.py#L8 """
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def __init__(self, dim):
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super().__init__()
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assert (dim % 2) == 0
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half_dim = dim // 2
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self.weights = nn.Parameter(torch.randn(half_dim))
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def forward(self, x):
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x = rearrange(x, 'b -> b 1')
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freqs = x * rearrange(self.weights, 'd -> 1 d') * 2 * math.pi
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fouriered = torch.cat((freqs.sin(), freqs.cos()), dim = -1)
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fouriered = torch.cat((x, fouriered), dim = -1)
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return fouriered
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# building block modules
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# building block modules
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class Block(nn.Module):
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class Block(nn.Module):
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@@ -158,6 +164,7 @@ class ResnetBlock(nn.Module):
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h = self.block1(x, scale_shift = scale_shift)
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h = self.block1(x, scale_shift = scale_shift)
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h = self.block2(h)
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h = self.block2(h)
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return h + self.res_conv(x)
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return h + self.res_conv(x)
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class LinearAttention(nn.Module):
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class LinearAttention(nn.Module):
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@@ -213,18 +220,6 @@ class Attention(nn.Module):
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# model
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# model
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def MLP(dim_in, dim_hidden):
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return nn.Sequential(
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Rearrange('... -> ... 1'),
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nn.Linear(1, dim_hidden),
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nn.GELU(),
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nn.LayerNorm(dim_hidden),
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nn.Linear(dim_hidden, dim_hidden),
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nn.GELU(),
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nn.LayerNorm(dim_hidden),
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nn.Linear(dim_hidden, dim_hidden)
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)
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class Unet(nn.Module):
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class Unet(nn.Module):
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def __init__(
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def __init__(
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self,
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self,
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@@ -235,7 +230,8 @@ class Unet(nn.Module):
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channels = 3,
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channels = 3,
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resnet_block_groups = 8,
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resnet_block_groups = 8,
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learned_variance = False,
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learned_variance = False,
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sinusoidal_cond_mlp = True
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learned_sinusoidal_cond = False,
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learned_sinusoidal_dim = 16
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):
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):
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super().__init__()
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super().__init__()
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@@ -255,17 +251,21 @@ class Unet(nn.Module):
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time_dim = dim * 4
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time_dim = dim * 4
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self.sinusoidal_cond_mlp = sinusoidal_cond_mlp
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self.learned_sinusoidal_cond = learned_sinusoidal_cond
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if sinusoidal_cond_mlp:
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if learned_sinusoidal_cond:
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self.time_mlp = nn.Sequential(
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sinu_pos_emb = LearnedSinusoidalPosEmb(learned_sinusoidal_dim)
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SinusoidalPosEmb(dim),
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fourier_dim = learned_sinusoidal_dim + 1
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nn.Linear(dim, time_dim),
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nn.GELU(),
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nn.Linear(time_dim, time_dim)
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)
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else:
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else:
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self.time_mlp = MLP(1, time_dim)
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sinu_pos_emb = SinusoidalPosEmb(dim)
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fourier_dim = dim
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self.time_mlp = nn.Sequential(
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sinu_pos_emb,
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nn.Linear(fourier_dim, time_dim),
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nn.GELU(),
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nn.Linear(time_dim, time_dim)
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)
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# layers
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# layers
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@@ -301,13 +301,13 @@ class Unet(nn.Module):
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default_out_dim = channels * (1 if not learned_variance else 2)
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default_out_dim = channels * (1 if not learned_variance else 2)
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self.out_dim = default(out_dim, default_out_dim)
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self.out_dim = default(out_dim, default_out_dim)
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self.final_conv = nn.Sequential(
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self.final_res_block = block_klass(dim * 2, dim, time_emb_dim = time_dim)
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block_klass(dim, dim),
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self.final_conv = nn.Conv2d(dim, self.out_dim, 1)
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nn.Conv2d(dim, self.out_dim, 1)
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)
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def forward(self, x, time):
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def forward(self, x, time):
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x = self.init_conv(x)
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x = self.init_conv(x)
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r = x.clone()
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t = self.time_mlp(time)
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t = self.time_mlp(time)
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h = []
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h = []
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@@ -330,6 +330,9 @@ class Unet(nn.Module):
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x = attn(x)
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x = attn(x)
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x = upsample(x)
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x = upsample(x)
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x = torch.cat((x, r), dim = 1)
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x = self.final_res_block(x, t)
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return self.final_conv(x)
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return self.final_conv(x)
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# gaussian diffusion trainer class
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# gaussian diffusion trainer class
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@@ -581,7 +584,6 @@ class Trainer(object):
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folder,
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folder,
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*,
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*,
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ema_decay = 0.995,
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ema_decay = 0.995,
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image_size = 128,
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train_batch_size = 32,
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train_batch_size = 32,
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train_lr = 1e-4,
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train_lr = 1e-4,
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train_num_steps = 100000,
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train_num_steps = 100000,
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@@ -594,9 +596,10 @@ class Trainer(object):
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augment_horizontal_flip = True
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augment_horizontal_flip = True
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):
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):
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super().__init__()
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super().__init__()
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self.image_size = diffusion_model.image_size
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self.model = diffusion_model
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self.model = diffusion_model
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self.ema = EMA(ema_decay)
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self.ema = EMA(diffusion_model, beta = ema_decay)
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self.ema_model = copy.deepcopy(self.model)
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self.update_ema_every = update_ema_every
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self.update_ema_every = update_ema_every
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self.step_start_ema = step_start_ema
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self.step_start_ema = step_start_ema
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@@ -607,9 +610,9 @@ class Trainer(object):
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self.gradient_accumulate_every = gradient_accumulate_every
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self.gradient_accumulate_every = gradient_accumulate_every
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self.train_num_steps = train_num_steps
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self.train_num_steps = train_num_steps
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self.ds = Dataset(folder, image_size, augment_horizontal_flip = augment_horizontal_flip)
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self.ds = Dataset(folder, self.image_size, augment_horizontal_flip = augment_horizontal_flip)
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self.dl = cycle(data.DataLoader(self.ds, batch_size = train_batch_size, shuffle = True, pin_memory = True, num_workers = cpu_count()))
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self.dl = cycle(data.DataLoader(self.ds, batch_size = train_batch_size, shuffle = True, pin_memory = True, num_workers = cpu_count()))
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self.opt = Adam(diffusion_model.parameters(), lr=train_lr)
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self.opt = Adam(diffusion_model.parameters(), lr = train_lr)
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self.step = 0
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self.step = 0
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@@ -619,22 +622,11 @@ class Trainer(object):
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self.results_folder = Path(results_folder)
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self.results_folder = Path(results_folder)
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self.results_folder.mkdir(exist_ok = True)
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self.results_folder.mkdir(exist_ok = True)
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self.reset_parameters()
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def reset_parameters(self):
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self.ema_model.load_state_dict(self.model.state_dict())
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def step_ema(self):
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if self.step < self.step_start_ema:
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self.reset_parameters()
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return
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self.ema.update_model_average(self.ema_model, self.model)
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def save(self, milestone):
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def save(self, milestone):
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data = {
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data = {
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'step': self.step,
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'step': self.step,
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'model': self.model.state_dict(),
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'model': self.model.state_dict(),
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'ema': self.ema_model.state_dict(),
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'ema': self.ema.state_dict(),
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'scaler': self.scaler.state_dict()
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'scaler': self.scaler.state_dict()
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}
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}
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torch.save(data, str(self.results_folder / f'model-{milestone}.pt'))
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torch.save(data, str(self.results_folder / f'model-{milestone}.pt'))
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@@ -644,7 +636,7 @@ class Trainer(object):
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self.step = data['step']
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self.step = data['step']
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self.model.load_state_dict(data['model'])
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self.model.load_state_dict(data['model'])
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self.ema_model.load_state_dict(data['ema'])
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self.ema.load_state_dict(data['ema'])
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self.scaler.load_state_dict(data['scaler'])
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self.scaler.load_state_dict(data['scaler'])
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def train(self):
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def train(self):
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@@ -664,15 +656,15 @@ class Trainer(object):
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self.scaler.update()
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self.scaler.update()
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self.opt.zero_grad()
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self.opt.zero_grad()
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if self.step % self.update_ema_every == 0:
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self.ema.update()
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self.step_ema()
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if self.step != 0 and self.step % self.save_and_sample_every == 0:
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if self.step != 0 and self.step % self.save_and_sample_every == 0:
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self.ema_model.eval()
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self.ema.ema_model.eval()
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with torch.no_grad():
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milestone = self.step // self.save_and_sample_every
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batches = num_to_groups(36, self.batch_size)
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all_images_list = list(map(lambda n: self.ema.ema_model.sample(batch_size=n), batches))
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milestone = self.step // self.save_and_sample_every
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batches = num_to_groups(36, self.batch_size)
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all_images_list = list(map(lambda n: self.ema_model.sample(batch_size=n), batches))
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all_images = torch.cat(all_images_list, dim=0)
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all_images = torch.cat(all_images_list, dim=0)
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utils.save_image(all_images, str(self.results_folder / f'sample-{milestone}.png'), nrow = 6)
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utils.save_image(all_images, str(self.results_folder / f'sample-{milestone}.png'), nrow = 6)
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self.save(milestone)
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self.save(milestone)
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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',
|
name = 'denoising-diffusion-pytorch',
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packages = find_packages(),
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packages = find_packages(),
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version = '0.19.1',
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version = '0.21.0',
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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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@@ -16,6 +16,7 @@ setup(
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],
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],
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install_requires=[
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install_requires=[
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'einops',
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'einops',
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'ema-pytorch',
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'pillow',
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'pillow',
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'torch',
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'torch',
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'torchvision',
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'torchvision',
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