mirror of
https://github.com/wassname/denoising-diffusion-pytorch.git
synced 2026-09-10 12:01:08 +08:00
Compare commits
| Author | SHA1 | Date | |
|---|---|---|---|
|
|
91cff45939 | ||
|
|
7b51e30da7 | ||
|
|
dadbf20154 | ||
|
|
7706bdfc6f | ||
|
|
183e5f3cc5 | ||
|
|
16c9ae7bb3 | ||
|
|
f5916111f8 | ||
|
|
ad9e303ff3 | ||
|
|
ae42f48f6a | ||
|
|
5989f4c77e | ||
|
|
2082046888 | ||
|
|
3c5b7e2d56 |
@@ -1,3 +1,6 @@
|
|||||||
|
# Generation results
|
||||||
|
results/
|
||||||
|
|
||||||
# Byte-compiled / optimized / DLL files
|
# Byte-compiled / optimized / DLL files
|
||||||
__pycache__/
|
__pycache__/
|
||||||
*.py[cod]
|
*.py[cod]
|
||||||
|
|||||||
@@ -2,7 +2,9 @@
|
|||||||
|
|
||||||
## Denoising Diffusion Probabilistic Model, in Pytorch
|
## Denoising Diffusion Probabilistic Model, in Pytorch
|
||||||
|
|
||||||
Implementation of <a href="https://arxiv.org/abs/2006.11239">Denoising Diffusion Probabilistic Model</a> in Pytorch. It is a new approach to generative modeling that may <a href="https://ajolicoeur.wordpress.com/the-new-contender-to-gans-score-matching-with-langevin-sampling/">have the potential</a> to rival GANs. It uses denoising score matching to estimate the gradient of the data distribution, followed by Langevin sampling to sample from the true distribution. This implementation was transcribed from the official Tensorflow version <a href="https://github.com/hojonathanho/diffusion">here</a>.
|
Implementation of <a href="https://arxiv.org/abs/2006.11239">Denoising Diffusion Probabilistic Model</a> in Pytorch. It is a new approach to generative modeling that may <a href="https://ajolicoeur.wordpress.com/the-new-contender-to-gans-score-matching-with-langevin-sampling/">have the potential</a> to rival GANs. It uses denoising score matching to estimate the gradient of the data distribution, followed by Langevin sampling to sample from the true distribution.
|
||||||
|
|
||||||
|
This implementation was transcribed from the official Tensorflow version <a href="https://github.com/hojonathanho/diffusion">here</a> and then modified to use <a href="https://arxiv.org/abs/2201.03545">ConvNext</a> blocks instead of Resnets.
|
||||||
|
|
||||||
<img src="./sample.png" width="500px"><img>
|
<img src="./sample.png" width="500px"><img>
|
||||||
|
|
||||||
@@ -27,6 +29,7 @@ model = Unet(
|
|||||||
|
|
||||||
diffusion = GaussianDiffusion(
|
diffusion = GaussianDiffusion(
|
||||||
model,
|
model,
|
||||||
|
image_size = 128,
|
||||||
timesteps = 1000, # number of steps
|
timesteps = 1000, # number of steps
|
||||||
loss_type = 'l1' # L1 or L2
|
loss_type = 'l1' # L1 or L2
|
||||||
)
|
)
|
||||||
@@ -36,7 +39,7 @@ loss = diffusion(training_images)
|
|||||||
loss.backward()
|
loss.backward()
|
||||||
# after a lot of training
|
# after a lot of training
|
||||||
|
|
||||||
sampled_images = diffusion.sample(128, batch_size = 4)
|
sampled_images = diffusion.sample(batch_size = 4)
|
||||||
sampled_images.shape # (4, 3, 128, 128)
|
sampled_images.shape # (4, 3, 128, 128)
|
||||||
```
|
```
|
||||||
|
|
||||||
@@ -52,6 +55,7 @@ model = Unet(
|
|||||||
|
|
||||||
diffusion = GaussianDiffusion(
|
diffusion = GaussianDiffusion(
|
||||||
model,
|
model,
|
||||||
|
image_size = 128,
|
||||||
timesteps = 1000, # number of steps
|
timesteps = 1000, # number of steps
|
||||||
loss_type = 'l1' # L1 or L2
|
loss_type = 'l1' # L1 or L2
|
||||||
).cuda()
|
).cuda()
|
||||||
@@ -59,10 +63,9 @@ diffusion = GaussianDiffusion(
|
|||||||
trainer = Trainer(
|
trainer = Trainer(
|
||||||
diffusion,
|
diffusion,
|
||||||
'path/to/your/images',
|
'path/to/your/images',
|
||||||
image_size = 128,
|
|
||||||
train_batch_size = 32,
|
train_batch_size = 32,
|
||||||
train_lr = 2e-5,
|
train_lr = 2e-5,
|
||||||
train_num_steps = 100000, # total training steps
|
train_num_steps = 700000, # total training steps
|
||||||
gradient_accumulate_every = 2, # gradient accumulation steps
|
gradient_accumulate_every = 2, # gradient accumulation steps
|
||||||
ema_decay = 0.995, # exponential moving average decay
|
ema_decay = 0.995, # exponential moving average decay
|
||||||
fp16 = True # turn on mixed precision training with apex
|
fp16 = True # turn on mixed precision training with apex
|
||||||
@@ -71,27 +74,39 @@ trainer = Trainer(
|
|||||||
trainer.train()
|
trainer.train()
|
||||||
```
|
```
|
||||||
|
|
||||||
|
Samples and model checkpoints will be logged to `./results` periodically
|
||||||
|
|
||||||
## Citations
|
## Citations
|
||||||
|
|
||||||
```bibtex
|
```bibtex
|
||||||
@misc{ho2020denoising,
|
@misc{ho2020denoising,
|
||||||
title={Denoising Diffusion Probabilistic Models},
|
title = {Denoising Diffusion Probabilistic Models},
|
||||||
author={Jonathan Ho and Ajay Jain and Pieter Abbeel},
|
author = {Jonathan Ho and Ajay Jain and Pieter Abbeel},
|
||||||
year={2020},
|
year = {2020},
|
||||||
eprint={2006.11239},
|
eprint = {2006.11239},
|
||||||
archivePrefix={arXiv},
|
archivePrefix = {arXiv},
|
||||||
primaryClass={cs.LG}
|
primaryClass = {cs.LG}
|
||||||
}
|
}
|
||||||
```
|
```
|
||||||
|
|
||||||
```bibtex
|
```bibtex
|
||||||
@inproceedings{
|
@inproceedings{anonymous2021improved,
|
||||||
anonymous2021improved,
|
title = {Improved Denoising Diffusion Probabilistic Models},
|
||||||
title={Improved Denoising Diffusion Probabilistic Models},
|
author = {Anonymous},
|
||||||
author={Anonymous},
|
booktitle = {Submitted to International Conference on Learning Representations},
|
||||||
booktitle={Submitted to International Conference on Learning Representations},
|
year = {2021},
|
||||||
year={2021},
|
url = {https://openreview.net/forum?id=-NEXDKk8gZ},
|
||||||
url={https://openreview.net/forum?id=-NEXDKk8gZ},
|
note = {under review}
|
||||||
note={under review}
|
}
|
||||||
|
```
|
||||||
|
|
||||||
|
```bibtex
|
||||||
|
@misc{liu2022convnet,
|
||||||
|
title = {A ConvNet for the 2020s},
|
||||||
|
author = {Zhuang Liu and Hanzi Mao and Chao-Yuan Wu and Christoph Feichtenhofer and Trevor Darrell and Saining Xie},
|
||||||
|
year = {2022},
|
||||||
|
eprint = {2201.03545},
|
||||||
|
archivePrefix = {arXiv},
|
||||||
|
primaryClass = {cs.CV}
|
||||||
}
|
}
|
||||||
```
|
```
|
||||||
|
|||||||
@@ -22,15 +22,6 @@ try:
|
|||||||
except:
|
except:
|
||||||
APEX_AVAILABLE = False
|
APEX_AVAILABLE = False
|
||||||
|
|
||||||
# constants
|
|
||||||
|
|
||||||
SAVE_AND_SAMPLE_EVERY = 1000
|
|
||||||
UPDATE_EMA_EVERY = 10
|
|
||||||
EXTS = ['jpg', 'jpeg', 'png']
|
|
||||||
|
|
||||||
RESULTS_FOLDER = Path('./results')
|
|
||||||
RESULTS_FOLDER.mkdir(exist_ok = True)
|
|
||||||
|
|
||||||
# helpers functions
|
# helpers functions
|
||||||
|
|
||||||
def exists(x):
|
def exists(x):
|
||||||
@@ -100,69 +91,73 @@ class SinusoidalPosEmb(nn.Module):
|
|||||||
emb = torch.cat((emb.sin(), emb.cos()), dim=-1)
|
emb = torch.cat((emb.sin(), emb.cos()), dim=-1)
|
||||||
return emb
|
return emb
|
||||||
|
|
||||||
class Mish(nn.Module):
|
def Upsample(dim):
|
||||||
def forward(self, x):
|
return nn.ConvTranspose2d(dim, dim, 4, 2, 1)
|
||||||
return x * torch.tanh(F.softplus(x))
|
|
||||||
|
|
||||||
class Upsample(nn.Module):
|
def Downsample(dim):
|
||||||
def __init__(self, dim):
|
return nn.Conv2d(dim, dim, 3, 2, 1)
|
||||||
|
|
||||||
|
class LayerNorm(nn.Module):
|
||||||
|
def __init__(self, dim, eps = 1e-5):
|
||||||
super().__init__()
|
super().__init__()
|
||||||
self.conv = nn.ConvTranspose2d(dim, dim, 4, 2, 1)
|
self.eps = eps
|
||||||
|
self.g = nn.Parameter(torch.ones(1, dim, 1, 1))
|
||||||
|
self.b = nn.Parameter(torch.zeros(1, dim, 1, 1))
|
||||||
|
|
||||||
def forward(self, x):
|
def forward(self, x):
|
||||||
return self.conv(x)
|
var = torch.var(x, dim = 1, unbiased = False, keepdim = True)
|
||||||
|
mean = torch.mean(x, dim = 1, keepdim = True)
|
||||||
|
return (x - mean) / (var + self.eps).sqrt() * self.g + self.b
|
||||||
|
|
||||||
class Downsample(nn.Module):
|
class PreNorm(nn.Module):
|
||||||
def __init__(self, dim):
|
def __init__(self, dim, fn):
|
||||||
super().__init__()
|
|
||||||
self.conv = nn.Conv2d(dim, dim, 3, 2, 1)
|
|
||||||
|
|
||||||
def forward(self, x):
|
|
||||||
return self.conv(x)
|
|
||||||
|
|
||||||
class Rezero(nn.Module):
|
|
||||||
def __init__(self, fn):
|
|
||||||
super().__init__()
|
super().__init__()
|
||||||
self.fn = fn
|
self.fn = fn
|
||||||
self.g = nn.Parameter(torch.zeros(1))
|
self.norm = LayerNorm(dim)
|
||||||
|
|
||||||
def forward(self, x):
|
def forward(self, x):
|
||||||
return self.fn(x) * self.g
|
x = self.norm(x)
|
||||||
|
return self.fn(x)
|
||||||
|
|
||||||
# building block modules
|
# building block modules
|
||||||
|
|
||||||
class Block(nn.Module):
|
class ConvNextBlock(nn.Module):
|
||||||
def __init__(self, dim, dim_out, groups = 8):
|
""" https://arxiv.org/abs/2201.03545 """
|
||||||
super().__init__()
|
|
||||||
self.block = nn.Sequential(
|
|
||||||
nn.Conv2d(dim, dim_out, 3, padding=1),
|
|
||||||
nn.GroupNorm(groups, dim_out),
|
|
||||||
Mish()
|
|
||||||
)
|
|
||||||
def forward(self, x):
|
|
||||||
return self.block(x)
|
|
||||||
|
|
||||||
class ResnetBlock(nn.Module):
|
def __init__(self, dim, dim_out, *, time_emb_dim = None, mult = 2, norm = True):
|
||||||
def __init__(self, dim, dim_out, *, time_emb_dim, groups = 8):
|
|
||||||
super().__init__()
|
super().__init__()
|
||||||
self.mlp = nn.Sequential(
|
self.mlp = nn.Sequential(
|
||||||
Mish(),
|
nn.GELU(),
|
||||||
nn.Linear(time_emb_dim, dim_out)
|
nn.Linear(time_emb_dim, dim)
|
||||||
|
) if exists(time_emb_dim) else None
|
||||||
|
|
||||||
|
self.ds_conv = nn.Conv2d(dim, dim, 7, padding = 3, groups = dim)
|
||||||
|
|
||||||
|
self.net = nn.Sequential(
|
||||||
|
LayerNorm(dim) if norm else nn.Identity(),
|
||||||
|
nn.Conv2d(dim, dim_out * mult, 1),
|
||||||
|
nn.GELU(),
|
||||||
|
LayerNorm(dim_out * mult),
|
||||||
|
nn.Conv2d(dim_out * mult, dim_out, 1)
|
||||||
)
|
)
|
||||||
|
|
||||||
self.block1 = Block(dim, dim_out)
|
|
||||||
self.block2 = Block(dim_out, dim_out)
|
|
||||||
self.res_conv = nn.Conv2d(dim, dim_out, 1) if dim != dim_out else nn.Identity()
|
self.res_conv = nn.Conv2d(dim, dim_out, 1) if dim != dim_out else nn.Identity()
|
||||||
|
|
||||||
def forward(self, x, time_emb):
|
def forward(self, x, time_emb = None):
|
||||||
h = self.block1(x)
|
h = self.ds_conv(x)
|
||||||
h += self.mlp(time_emb)[:, :, None, None]
|
|
||||||
h = self.block2(h)
|
if exists(self.mlp):
|
||||||
|
assert exists(time_emb), 'time emb must be passed in'
|
||||||
|
condition = self.mlp(time_emb)
|
||||||
|
h = h + rearrange(condition, 'b c -> b c 1 1')
|
||||||
|
|
||||||
|
h = self.net(h)
|
||||||
return h + self.res_conv(x)
|
return h + self.res_conv(x)
|
||||||
|
|
||||||
class LinearAttention(nn.Module):
|
class LinearAttention(nn.Module):
|
||||||
def __init__(self, dim, heads = 4, dim_head = 32):
|
def __init__(self, dim, heads = 4, dim_head = 32):
|
||||||
super().__init__()
|
super().__init__()
|
||||||
|
self.scale = dim_head ** -0.5
|
||||||
self.heads = heads
|
self.heads = heads
|
||||||
hidden_dim = dim_head * heads
|
hidden_dim = dim_head * heads
|
||||||
self.to_qkv = nn.Conv2d(dim, hidden_dim * 3, 1, bias = False)
|
self.to_qkv = nn.Conv2d(dim, hidden_dim * 3, 1, bias = False)
|
||||||
@@ -170,28 +165,45 @@ class LinearAttention(nn.Module):
|
|||||||
|
|
||||||
def forward(self, x):
|
def forward(self, x):
|
||||||
b, c, h, w = x.shape
|
b, c, h, w = x.shape
|
||||||
qkv = self.to_qkv(x)
|
qkv = self.to_qkv(x).chunk(3, dim = 1)
|
||||||
q, k, v = rearrange(qkv, 'b (qkv heads c) h w -> qkv b heads c (h w)', heads = self.heads, qkv=3)
|
q, k, v = map(lambda t: rearrange(t, 'b (h c) x y -> b h c (x y)', h = self.heads), qkv)
|
||||||
k = k.softmax(dim=-1)
|
q = q * self.scale
|
||||||
context = torch.einsum('bhdn,bhen->bhde', k, v)
|
|
||||||
out = torch.einsum('bhde,bhdn->bhen', context, q)
|
k = k.softmax(dim = -1)
|
||||||
out = rearrange(out, 'b heads c (h w) -> b (heads c) h w', heads=self.heads, h=h, w=w)
|
context = torch.einsum('b h d n, b h e n -> b h d e', k, v)
|
||||||
|
|
||||||
|
out = torch.einsum('b h d e, b h d n -> b h e n', context, q)
|
||||||
|
out = rearrange(out, 'b h c (x y) -> b (h c) x y', h = self.heads, x = h, y = w)
|
||||||
return self.to_out(out)
|
return self.to_out(out)
|
||||||
|
|
||||||
# model
|
# model
|
||||||
|
|
||||||
class Unet(nn.Module):
|
class Unet(nn.Module):
|
||||||
def __init__(self, dim, out_dim = None, dim_mults=(1, 2, 4, 8), groups = 8):
|
def __init__(
|
||||||
|
self,
|
||||||
|
dim,
|
||||||
|
out_dim = None,
|
||||||
|
dim_mults=(1, 2, 4, 8),
|
||||||
|
channels = 3,
|
||||||
|
with_time_emb = True
|
||||||
|
):
|
||||||
super().__init__()
|
super().__init__()
|
||||||
dims = [3, *map(lambda m: dim * m, dim_mults)]
|
self.channels = channels
|
||||||
|
|
||||||
|
dims = [channels, *map(lambda m: dim * m, dim_mults)]
|
||||||
in_out = list(zip(dims[:-1], dims[1:]))
|
in_out = list(zip(dims[:-1], dims[1:]))
|
||||||
|
|
||||||
self.time_pos_emb = SinusoidalPosEmb(dim)
|
if with_time_emb:
|
||||||
self.mlp = nn.Sequential(
|
time_dim = dim
|
||||||
nn.Linear(dim, dim * 4),
|
self.time_mlp = nn.Sequential(
|
||||||
Mish(),
|
SinusoidalPosEmb(dim),
|
||||||
nn.Linear(dim * 4, dim)
|
nn.Linear(dim, dim * 4),
|
||||||
)
|
nn.GELU(),
|
||||||
|
nn.Linear(dim * 4, dim)
|
||||||
|
)
|
||||||
|
else:
|
||||||
|
time_dim = None
|
||||||
|
self.time_mlp = None
|
||||||
|
|
||||||
self.downs = nn.ModuleList([])
|
self.downs = nn.ModuleList([])
|
||||||
self.ups = nn.ModuleList([])
|
self.ups = nn.ModuleList([])
|
||||||
@@ -201,42 +213,41 @@ class Unet(nn.Module):
|
|||||||
is_last = ind >= (num_resolutions - 1)
|
is_last = ind >= (num_resolutions - 1)
|
||||||
|
|
||||||
self.downs.append(nn.ModuleList([
|
self.downs.append(nn.ModuleList([
|
||||||
ResnetBlock(dim_in, dim_out, time_emb_dim = dim),
|
ConvNextBlock(dim_in, dim_out, time_emb_dim = time_dim, norm = ind != 0),
|
||||||
ResnetBlock(dim_out, dim_out, time_emb_dim = dim),
|
ConvNextBlock(dim_out, dim_out, time_emb_dim = time_dim),
|
||||||
Residual(Rezero(LinearAttention(dim_out))),
|
Residual(PreNorm(dim_out, LinearAttention(dim_out))),
|
||||||
Downsample(dim_out) if not is_last else nn.Identity()
|
Downsample(dim_out) if not is_last else nn.Identity()
|
||||||
]))
|
]))
|
||||||
|
|
||||||
mid_dim = dims[-1]
|
mid_dim = dims[-1]
|
||||||
self.mid_block1 = ResnetBlock(mid_dim, mid_dim, time_emb_dim = dim)
|
self.mid_block1 = ConvNextBlock(mid_dim, mid_dim, time_emb_dim = time_dim)
|
||||||
self.mid_attn = Residual(Rezero(LinearAttention(mid_dim)))
|
self.mid_attn = Residual(PreNorm(mid_dim, LinearAttention(mid_dim)))
|
||||||
self.mid_block2 = ResnetBlock(mid_dim, mid_dim, time_emb_dim = dim)
|
self.mid_block2 = ConvNextBlock(mid_dim, mid_dim, time_emb_dim = time_dim)
|
||||||
|
|
||||||
for ind, (dim_in, dim_out) in enumerate(reversed(in_out[1:])):
|
for ind, (dim_in, dim_out) in enumerate(reversed(in_out[1:])):
|
||||||
is_last = ind >= (num_resolutions - 1)
|
is_last = ind >= (num_resolutions - 1)
|
||||||
|
|
||||||
self.ups.append(nn.ModuleList([
|
self.ups.append(nn.ModuleList([
|
||||||
ResnetBlock(dim_out * 2, dim_in, time_emb_dim = dim),
|
ConvNextBlock(dim_out * 2, dim_in, time_emb_dim = time_dim),
|
||||||
ResnetBlock(dim_in, dim_in, time_emb_dim = dim),
|
ConvNextBlock(dim_in, dim_in, time_emb_dim = time_dim),
|
||||||
Residual(Rezero(LinearAttention(dim_in))),
|
Residual(PreNorm(dim_in, LinearAttention(dim_in))),
|
||||||
Upsample(dim_in) if not is_last else nn.Identity()
|
Upsample(dim_in) if not is_last else nn.Identity()
|
||||||
]))
|
]))
|
||||||
|
|
||||||
out_dim = default(out_dim, 3)
|
out_dim = default(out_dim, channels)
|
||||||
self.final_conv = nn.Sequential(
|
self.final_conv = nn.Sequential(
|
||||||
Block(dim, dim),
|
ConvNextBlock(dim, dim),
|
||||||
nn.Conv2d(dim, out_dim, 1)
|
nn.Conv2d(dim, out_dim, 1)
|
||||||
)
|
)
|
||||||
|
|
||||||
def forward(self, x, time):
|
def forward(self, x, time):
|
||||||
t = self.time_pos_emb(time)
|
t = self.time_mlp(time) if exists(self.time_mlp) else None
|
||||||
t = self.mlp(t)
|
|
||||||
|
|
||||||
h = []
|
h = []
|
||||||
|
|
||||||
for resnet, resnet2, attn, downsample in self.downs:
|
for convnext, convnext2, attn, downsample in self.downs:
|
||||||
x = resnet(x, t)
|
x = convnext(x, t)
|
||||||
x = resnet2(x, t)
|
x = convnext2(x, t)
|
||||||
x = attn(x)
|
x = attn(x)
|
||||||
h.append(x)
|
h.append(x)
|
||||||
x = downsample(x)
|
x = downsample(x)
|
||||||
@@ -245,10 +256,10 @@ class Unet(nn.Module):
|
|||||||
x = self.mid_attn(x)
|
x = self.mid_attn(x)
|
||||||
x = self.mid_block2(x, t)
|
x = self.mid_block2(x, t)
|
||||||
|
|
||||||
for resnet, resnet2, attn, upsample in self.ups:
|
for convnext, convnext2, attn, upsample in self.ups:
|
||||||
x = torch.cat((x, h.pop()), dim=1)
|
x = torch.cat((x, h.pop()), dim=1)
|
||||||
x = resnet(x, t)
|
x = convnext(x, t)
|
||||||
x = resnet2(x, t)
|
x = convnext2(x, t)
|
||||||
x = attn(x)
|
x = attn(x)
|
||||||
x = upsample(x)
|
x = upsample(x)
|
||||||
|
|
||||||
@@ -279,8 +290,19 @@ def cosine_beta_schedule(timesteps, s = 0.008):
|
|||||||
return np.clip(betas, a_min = 0, a_max = 0.999)
|
return np.clip(betas, a_min = 0, a_max = 0.999)
|
||||||
|
|
||||||
class GaussianDiffusion(nn.Module):
|
class GaussianDiffusion(nn.Module):
|
||||||
def __init__(self, denoise_fn, timesteps=1000, loss_type='l1', betas = None):
|
def __init__(
|
||||||
|
self,
|
||||||
|
denoise_fn,
|
||||||
|
*,
|
||||||
|
image_size,
|
||||||
|
channels = 3,
|
||||||
|
timesteps = 1000,
|
||||||
|
loss_type = 'l1',
|
||||||
|
betas = None
|
||||||
|
):
|
||||||
super().__init__()
|
super().__init__()
|
||||||
|
self.channels = channels
|
||||||
|
self.image_size = image_size
|
||||||
self.denoise_fn = denoise_fn
|
self.denoise_fn = denoise_fn
|
||||||
|
|
||||||
if exists(betas):
|
if exists(betas):
|
||||||
@@ -371,8 +393,10 @@ class GaussianDiffusion(nn.Module):
|
|||||||
return img
|
return img
|
||||||
|
|
||||||
@torch.no_grad()
|
@torch.no_grad()
|
||||||
def sample(self, image_size, batch_size = 16):
|
def sample(self, batch_size = 16):
|
||||||
return self.p_sample_loop((batch_size, 3, image_size, image_size))
|
image_size = self.image_size
|
||||||
|
channels = self.channels
|
||||||
|
return self.p_sample_loop((batch_size, channels, image_size, image_size))
|
||||||
|
|
||||||
@torch.no_grad()
|
@torch.no_grad()
|
||||||
def interpolate(self, x1, x2, t = None, lam = 0.5):
|
def interpolate(self, x1, x2, t = None, lam = 0.5):
|
||||||
@@ -415,24 +439,26 @@ class GaussianDiffusion(nn.Module):
|
|||||||
return loss
|
return loss
|
||||||
|
|
||||||
def forward(self, x, *args, **kwargs):
|
def forward(self, x, *args, **kwargs):
|
||||||
b, *_, device = *x.shape, x.device
|
b, c, h, w, device, img_size, = *x.shape, x.device, self.image_size
|
||||||
|
assert h == img_size and w == img_size, f'height and width of image must be {img_size}'
|
||||||
t = torch.randint(0, self.num_timesteps, (b,), device=device).long()
|
t = torch.randint(0, self.num_timesteps, (b,), device=device).long()
|
||||||
return self.p_losses(x, t, *args, **kwargs)
|
return self.p_losses(x, t, *args, **kwargs)
|
||||||
|
|
||||||
# dataset classes
|
# dataset classes
|
||||||
|
|
||||||
class Dataset(data.Dataset):
|
class Dataset(data.Dataset):
|
||||||
def __init__(self, folder, image_size):
|
def __init__(self, folder, image_size, exts = ['jpg', 'jpeg', 'png']):
|
||||||
super().__init__()
|
super().__init__()
|
||||||
self.folder = folder
|
self.folder = folder
|
||||||
self.image_size = image_size
|
self.image_size = image_size
|
||||||
self.paths = [p for ext in EXTS for p in Path(f'{folder}').glob(f'**/*.{ext}')]
|
self.paths = [p for ext in exts for p in Path(f'{folder}').glob(f'**/*.{ext}')]
|
||||||
|
|
||||||
self.transform = transforms.Compose([
|
self.transform = transforms.Compose([
|
||||||
transforms.Resize(image_size),
|
transforms.Resize(image_size),
|
||||||
transforms.RandomHorizontalFlip(),
|
transforms.RandomHorizontalFlip(),
|
||||||
transforms.CenterCrop(image_size),
|
transforms.CenterCrop(image_size),
|
||||||
transforms.ToTensor()
|
transforms.ToTensor(),
|
||||||
|
transforms.Lambda(lambda t: (t * 2) - 1)
|
||||||
])
|
])
|
||||||
|
|
||||||
def __len__(self):
|
def __len__(self):
|
||||||
@@ -458,16 +484,22 @@ class Trainer(object):
|
|||||||
train_num_steps = 100000,
|
train_num_steps = 100000,
|
||||||
gradient_accumulate_every = 2,
|
gradient_accumulate_every = 2,
|
||||||
fp16 = False,
|
fp16 = False,
|
||||||
step_start_ema = 2000
|
step_start_ema = 2000,
|
||||||
|
update_ema_every = 10,
|
||||||
|
save_and_sample_every = 1000,
|
||||||
|
results_folder = './results'
|
||||||
):
|
):
|
||||||
super().__init__()
|
super().__init__()
|
||||||
self.model = diffusion_model
|
self.model = diffusion_model
|
||||||
self.ema = EMA(ema_decay)
|
self.ema = EMA(ema_decay)
|
||||||
self.ema_model = copy.deepcopy(self.model)
|
self.ema_model = copy.deepcopy(self.model)
|
||||||
|
self.update_ema_every = update_ema_every
|
||||||
|
|
||||||
self.step_start_ema = step_start_ema
|
self.step_start_ema = step_start_ema
|
||||||
|
self.save_and_sample_every = save_and_sample_every
|
||||||
|
|
||||||
self.batch_size = train_batch_size
|
self.batch_size = train_batch_size
|
||||||
self.image_size = image_size
|
self.image_size = diffusion_model.image_size
|
||||||
self.gradient_accumulate_every = gradient_accumulate_every
|
self.gradient_accumulate_every = gradient_accumulate_every
|
||||||
self.train_num_steps = train_num_steps
|
self.train_num_steps = train_num_steps
|
||||||
|
|
||||||
@@ -483,6 +515,9 @@ class Trainer(object):
|
|||||||
if fp16:
|
if fp16:
|
||||||
(self.model, self.ema_model), self.opt = amp.initialize([self.model, self.ema_model], self.opt, opt_level='O1')
|
(self.model, self.ema_model), self.opt = amp.initialize([self.model, self.ema_model], self.opt, opt_level='O1')
|
||||||
|
|
||||||
|
self.results_folder = Path(results_folder)
|
||||||
|
self.results_folder.mkdir(exist_ok = True)
|
||||||
|
|
||||||
self.reset_parameters()
|
self.reset_parameters()
|
||||||
|
|
||||||
def reset_parameters(self):
|
def reset_parameters(self):
|
||||||
@@ -500,10 +535,10 @@ class Trainer(object):
|
|||||||
'model': self.model.state_dict(),
|
'model': self.model.state_dict(),
|
||||||
'ema': self.ema_model.state_dict()
|
'ema': self.ema_model.state_dict()
|
||||||
}
|
}
|
||||||
torch.save(data, str(RESULTS_FOLDER / f'model-{milestone}.pt'))
|
torch.save(data, str(self.results_folder / f'model-{milestone}.pt'))
|
||||||
|
|
||||||
def load(self, milestone):
|
def load(self, milestone):
|
||||||
data = torch.load(str(RESULTS_FOLDER / f'model-{milestone}.pt'))
|
data = torch.load(str(self.results_folder / f'model-{milestone}.pt'))
|
||||||
|
|
||||||
self.step = data['step']
|
self.step = data['step']
|
||||||
self.model.load_state_dict(data['model'])
|
self.model.load_state_dict(data['model'])
|
||||||
@@ -522,15 +557,16 @@ class Trainer(object):
|
|||||||
self.opt.step()
|
self.opt.step()
|
||||||
self.opt.zero_grad()
|
self.opt.zero_grad()
|
||||||
|
|
||||||
if self.step % UPDATE_EMA_EVERY == 0:
|
if self.step % self.update_ema_every == 0:
|
||||||
self.step_ema()
|
self.step_ema()
|
||||||
|
|
||||||
if self.step != 0 and self.step % SAVE_AND_SAMPLE_EVERY == 0:
|
if self.step != 0 and self.step % self.save_and_sample_every == 0:
|
||||||
milestone = self.step // SAVE_AND_SAMPLE_EVERY
|
milestone = self.step // self.save_and_sample_every
|
||||||
batches = num_to_groups(36, self.batch_size)
|
batches = num_to_groups(36, self.batch_size)
|
||||||
all_images_list = list(map(lambda n: self.ema_model.sample(self.image_size, batch_size=n), batches))
|
all_images_list = list(map(lambda n: self.ema_model.sample(batch_size=n), batches))
|
||||||
all_images = torch.cat(all_images_list, dim=0)
|
all_images = torch.cat(all_images_list, dim=0)
|
||||||
utils.save_image(all_images, str(RESULTS_FOLDER / f'sample-{milestone}.png'), nrow=6)
|
all_images = (all_images + 1) * 0.5
|
||||||
|
utils.save_image(all_images, str(self.results_folder / f'sample-{milestone}.png'), nrow = 6)
|
||||||
self.save(milestone)
|
self.save(milestone)
|
||||||
|
|
||||||
self.step += 1
|
self.step += 1
|
||||||
|
|||||||
BIN
Binary file not shown.
|
After Width: | Height: | Size: 842 KiB |
@@ -3,7 +3,7 @@ from setuptools import setup, find_packages
|
|||||||
setup(
|
setup(
|
||||||
name = 'denoising-diffusion-pytorch',
|
name = 'denoising-diffusion-pytorch',
|
||||||
packages = find_packages(),
|
packages = find_packages(),
|
||||||
version = '0.5.2',
|
version = '0.7.0',
|
||||||
license='MIT',
|
license='MIT',
|
||||||
description = 'Denoising Diffusion Probabilistic Models - Pytorch',
|
description = 'Denoising Diffusion Probabilistic Models - Pytorch',
|
||||||
author = 'Phil Wang',
|
author = 'Phil Wang',
|
||||||
|
|||||||
Reference in New Issue
Block a user