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https://github.com/wassname/denoising-diffusion-pytorch.git
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@@ -1,4 +1,4 @@
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<img src="./denoising-diffusion.png" width="500px"></img>
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<img src="./images/denoising-diffusion.png" width="500px"></img>
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## Denoising Diffusion Probabilistic Model, in Pytorch
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@@ -10,7 +10,7 @@ Youtube AI Educators - <a href="https://www.youtube.com/watch?v=W-O7AZNzbzQ">Yan
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<a href="https://huggingface.co/blog/annotated-diffusion">Annotated code</a> by Research Scientists / Engineers from <a href="https://huggingface.co/">🤗 Huggingface</a>
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<img src="./sample.png" width="500px"><img>
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<img src="./images/sample.png" width="500px"><img>
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[](https://badge.fury.io/py/denoising-diffusion-pytorch)
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@@ -69,7 +69,7 @@ trainer = Trainer(
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diffusion,
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'path/to/your/images',
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train_batch_size = 32,
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train_lr = 1e-4,
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train_lr = 8e-5,
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train_num_steps = 700000, # total training steps
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gradient_accumulate_every = 2, # gradient accumulation steps
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ema_decay = 0.995, # exponential moving average decay
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@@ -58,6 +58,9 @@ def convert_image_to(img_type, image):
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return image.convert(img_type)
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return image
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def l2norm(t):
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return F.normalize(t, dim = -1)
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# normalization functions
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def normalize_to_neg_one_to_one(img):
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@@ -215,9 +218,9 @@ class LinearAttention(nn.Module):
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return self.to_out(out)
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class Attention(nn.Module):
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def __init__(self, dim, heads = 4, dim_head = 32):
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def __init__(self, dim, heads = 4, dim_head = 32, scale = 16):
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super().__init__()
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self.scale = dim_head ** -0.5
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self.scale = scale
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self.heads = heads
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hidden_dim = dim_head * heads
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self.to_qkv = nn.Conv2d(dim, hidden_dim * 3, 1, bias = False)
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@@ -227,10 +230,10 @@ class Attention(nn.Module):
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b, c, h, w = x.shape
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qkv = self.to_qkv(x).chunk(3, dim = 1)
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q, k, v = map(lambda t: rearrange(t, 'b (h c) x y -> b h c (x y)', h = self.heads), qkv)
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q = q * self.scale
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sim = einsum('b h d i, b h d j -> b h i j', q, k)
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sim = sim - sim.amax(dim = -1, keepdim = True).detach()
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q, k = map(l2norm, (q, k))
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sim = einsum('b h d i, b h d j -> b h i j', q, k) * self.scale
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attn = sim.softmax(dim = -1)
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out = einsum('b h i j, b h d j -> b h i d', attn, v)
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@@ -476,7 +479,7 @@ class GaussianDiffusion(nn.Module):
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def predict_noise_from_start(self, x_t, t, x0):
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return (
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(x0 - extract(self.sqrt_recip_alphas_cumprod, t, x_t.shape) * x_t) / \
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(extract(self.sqrt_recip_alphas_cumprod, t, x_t.shape) * x_t - x0) / \
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extract(self.sqrt_recipm1_alphas_cumprod, t, x_t.shape)
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)
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@@ -533,11 +536,10 @@ class GaussianDiffusion(nn.Module):
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return img
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@torch.no_grad()
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def ddim_sample(self, shape, clip_denoised = False):
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def ddim_sample(self, shape, clip_denoised = True):
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batch, device, total_timesteps, sampling_timesteps, eta, objective = shape[0], self.betas.device, self.num_timesteps, self.sampling_timesteps, self.ddim_sampling_eta, self.objective
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times = torch.linspace(0., total_timesteps, steps = sampling_timesteps + 2)[:-1]
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times = list(reversed(times.int().tolist()))
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time_pairs = list(zip(times[:-1], times[1:]))
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@@ -551,12 +553,17 @@ class GaussianDiffusion(nn.Module):
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pred_noise, x_start, *_ = self.model_predictions(img, time_cond)
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c1 = eta * ((1 - alpha / alpha_next) * (1 - alpha_next) / (1 - alpha)).sqrt()
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c2 = ((1 - alpha_next) - torch.square(c1)).sqrt()
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if clip_denoised:
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x_start.clamp_(-1., 1.)
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sigma = eta * ((1 - alpha / alpha_next) * (1 - alpha_next) / (1 - alpha)).sqrt()
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c = ((1 - alpha_next) - sigma ** 2).sqrt()
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noise = torch.randn_like(img) if time_next > 0 else 0.
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img = x_start * alpha_next.sqrt() + \
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c1 * torch.randn_like(img) + \
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c2 * pred_noise
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c * pred_noise + \
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sigma * noise
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img = unnormalize_to_zero_to_one(img)
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return img
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@@ -677,6 +684,7 @@ class Trainer(object):
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train_num_steps = 100000,
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ema_update_every = 10,
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ema_decay = 0.995,
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adam_betas = (0.9, 0.99),
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save_and_sample_every = 1000,
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num_samples = 25,
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results_folder = './results',
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@@ -711,11 +719,12 @@ class Trainer(object):
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self.ds = Dataset(folder, self.image_size, augment_horizontal_flip = augment_horizontal_flip, convert_image_to = convert_image_to)
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dl = DataLoader(self.ds, batch_size = train_batch_size, shuffle = True, pin_memory = True, num_workers = cpu_count())
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dl = self.accelerator.prepare(dl)
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self.dl = cycle(dl)
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# optimizer
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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, betas = adam_betas)
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# for logging results in a folder periodically
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@@ -731,7 +740,7 @@ class Trainer(object):
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# prepare model, dataloader, optimizer with accelerator
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self.model, self.dl, self.opt = self.accelerator.prepare(self.model, self.dl, self.opt)
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self.model, self.opt = self.accelerator.prepare(self.model, self.opt)
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def save(self, milestone):
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if not self.accelerator.is_local_main_process:
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@@ -768,14 +777,19 @@ class Trainer(object):
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while self.step < self.train_num_steps:
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total_loss = 0.
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for _ in range(self.gradient_accumulate_every):
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data = next(self.dl).to(device)
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with self.accelerator.autocast():
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loss = self.model(data)
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self.accelerator.backward(loss / self.gradient_accumulate_every)
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loss = loss / self.gradient_accumulate_every
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total_loss += loss.item()
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pbar.set_description(f'loss: {loss.item():.4f}')
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self.accelerator.backward(loss)
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pbar.set_description(f'loss: {total_loss:.4f}')
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accelerator.wait_for_everyone()
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Before Width: | Height: | Size: 40 KiB After Width: | Height: | Size: 40 KiB |
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Before Width: | Height: | Size: 842 KiB After Width: | Height: | Size: 842 KiB |
@@ -3,7 +3,7 @@ from setuptools import setup, find_packages
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setup(
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name = 'denoising-diffusion-pytorch',
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packages = find_packages(),
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version = '0.25.0',
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version = '0.26.3',
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license='MIT',
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description = 'Denoising Diffusion Probabilistic Models - Pytorch',
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author = 'Phil Wang',
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