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2 changed files with 83 additions and 14 deletions
@@ -6,6 +6,7 @@ from torch.special import expm1
from tqdm import tqdm
from einops import rearrange, repeat
from einops.layers.torch import Rearrange
# helpers
@@ -33,6 +34,24 @@ def right_pad_dims_to(x, t):
return t
return t.view(*t.shape, *((1,) * padding_dims))
# neural net helpers
class Residual(nn.Module):
def __init__(self, fn):
super().__init__()
self.fn = fn
def forward(self, x):
return x + self.fn(x)
class MonotonicLinear(nn.Module):
def __init__(self, *args, **kwargs):
super().__init__()
self.net = nn.Linear(*args, **kwargs)
def forward(self, x):
return F.linear(x, self.net.weight.abs(), self.net.bias.abs())
# continuous schedules
# equations are taken from https://openreview.net/attachment?id=2LdBqxc1Yv&name=supplementary_material
@@ -47,10 +66,44 @@ def alpha_cosine_log_snr(t):
raise NotImplementedError
class learned_noise_schedule(nn.Module):
def __init__(self):
""" described in section H and then I.2 of the supplementary material for variational ddpm paper """
def __init__(
self,
*,
log_snr_max,
log_snr_min,
hidden_dim = 1024,
frac_gradient = 1.
):
super().__init__()
raise NotImplementedError
# learned noise schedule, using learned monotonic MLP (weights kept positive) in the paper
self.slope = log_snr_min - log_snr_max
self.intercept = log_snr_max
self.net = nn.Sequential(
Rearrange('... -> ... 1'),
MonotonicLinear(1, 1),
Residual(nn.Sequential(
MonotonicLinear(1, hidden_dim),
nn.Sigmoid(),
MonotonicLinear(hidden_dim, 1)
)),
Rearrange('... 1 -> ...'),
)
self.frac_gradient = frac_gradient
def forward(self, x):
frac_gradient = self.frac_gradient
device = x.device
out_zero = self.net(torch.zeros_like(x))
out_one = self.net(torch.ones_like(x))
x = self.net(x)
normed = self.slope * ((x - out_zero) / (out_one - out_zero)) + self.intercept
return normed * frac_gradient + normed.detach() * (1 - frac_gradient)
class ContinuousTimeGaussianDiffusion(nn.Module):
def __init__(
@@ -59,10 +112,12 @@ class ContinuousTimeGaussianDiffusion(nn.Module):
*,
image_size,
channels = 3,
cond_scale = 500,
loss_type = 'l1',
noise_schedule = 'linear',
num_sample_steps = 500
num_sample_steps = 500,
clip_after_noising_during_sampling = False,
learned_schedule_net_hidden_dim = 1024,
learned_noise_schedule_frac_gradient = 1. # between 0 and 1, determines what percentage of gradients go back, so one can update the learned noise schedule more slowly
):
super().__init__()
assert not denoise_fn.sinusoidal_cond_mlp
@@ -76,11 +131,19 @@ class ContinuousTimeGaussianDiffusion(nn.Module):
# continuous noise schedule related stuff
self.cond_scale = cond_scale # the log(snr) will be scaled by this value
self.loss_type = loss_type
if noise_schedule == 'linear':
self.log_snr = beta_linear_log_snr
elif noise_schedule == 'learned':
log_snr_max, log_snr_min = [beta_linear_log_snr(torch.tensor([time])).item() for time in (0., 1.)]
self.log_snr = learned_noise_schedule(
log_snr_max = log_snr_max,
log_snr_min = log_snr_min,
hidden_dim = learned_schedule_net_hidden_dim,
frac_gradient = learned_noise_schedule_frac_gradient
)
else:
raise ValueError(f'unknown noise schedule {noise_schedule}')
@@ -88,6 +151,10 @@ class ContinuousTimeGaussianDiffusion(nn.Module):
self.num_sample_steps = num_sample_steps
# clipping related hyperparameters
self.clip_after_noising_during_sampling = clip_after_noising_during_sampling
@property
def device(self):
return next(self.denoise_fn.parameters()).device
@@ -108,11 +175,6 @@ class ContinuousTimeGaussianDiffusion(nn.Module):
# todo - derive x_start from the posterior mean and do dynamic thresholding
# assumed that is what is going on in Imagen
batch = x.shape[0]
batch_time = repeat(time, ' -> b', b = batch)
pred_noise = self.denoise_fn(x, batch_time * self.cond_scale)
log_snr = self.log_snr(time)
log_snr_next = self.log_snr(time_next)
c = -expm1(log_snr - log_snr_next)
@@ -120,6 +182,9 @@ class ContinuousTimeGaussianDiffusion(nn.Module):
squared_alpha, squared_alpha_next = log_snr.sigmoid(), log_snr_next.sigmoid()
squared_sigma, squared_sigma_next = (-log_snr).sigmoid(), (-log_snr_next).sigmoid()
batch_log_snr = repeat(log_snr, ' -> b', b = x.shape[0])
pred_noise = self.denoise_fn(x, batch_log_snr)
model_mean = sqrt(squared_alpha_next / squared_alpha) * (x - c * sqrt(squared_sigma) * pred_noise)
posterior_variance = squared_sigma_next * c
@@ -151,8 +216,12 @@ class ContinuousTimeGaussianDiffusion(nn.Module):
times_next = steps[i + 1]
img = self.p_sample(img, times, times_next)
if self.clip_after_noising_during_sampling:
# clip after noise is added. perhaps this is sufficient for Imagen dynamic thresholding?
img.clamp_(-1., 1.)
img = unnormalize_to_zero_to_one(img)
return img
return img.clamp(0., 1.)
@torch.no_grad()
def sample(self, batch_size = 16):
@@ -180,7 +249,7 @@ class ContinuousTimeGaussianDiffusion(nn.Module):
x, log_snr = self.q_sample(x_start = x_start, times = times, noise = noise)
model_out = self.denoise_fn(x, log_snr * self.cond_scale)
model_out = self.denoise_fn(x, log_snr)
return self.loss_fn(model_out, noise)
def forward(self, img, *args, **kwargs):
+1 -1
View File
@@ -3,7 +3,7 @@ from setuptools import setup, find_packages
setup(
name = 'denoising-diffusion-pytorch',
packages = find_packages(),
version = '0.16.5',
version = '0.17.3',
license='MIT',
description = 'Denoising Diffusion Probabilistic Models - Pytorch',
author = 'Phil Wang',