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Reusable DiT building blocks needed for inference.
Extracted from networks/DiT/dit.py so the inference set avoids importing
the full training-only model classes in that file.
"""
import math
import numpy as np
import torch
import torch.nn as nn
from einops import rearrange
from timm.layers.mlp import SwiGLU
from timm.models.vision_transformer import Attention, Mlp
def get_norm_layer(norm_layer):
if isinstance(norm_layer, str):
if norm_layer == 'layer_norm':
return nn.LayerNorm
elif norm_layer == 'rms_norm':
return nn.RMSNorm
else:
raise ValueError(f"Unsupported norm layer: {norm_layer}")
return norm_layer
def modulate(x, shift, scale):
n = x.ndim - shift.ndim
for _ in range(n):
shift = shift.unsqueeze(-2)
scale = scale.unsqueeze(-2)
return x * (1 + scale) + shift
def _broadcast_gate(gate, x):
n = x.ndim - gate.ndim
for _ in range(n):
gate = gate.unsqueeze(-2)
return gate
class FrequencyEncoder:
def __init__(self, embed_dim, freq_min=1, freq_max=5):
"""
Deterministic frequency encoder with fixed normalization.
Args:
embed_dim (int): Dimensionality of the token embeddings.
freq_min (float): Minimum frequency value.
freq_max (float): Maximum frequency value.
"""
self.embed_dim = embed_dim
self.freq_min = freq_min
self.freq_max = freq_max
def encode(self, frequencies):
"""
Encodes frequencies into embeddings using sine-cosine features.
Args:
frequencies (torch.Tensor): Tensor of shape (batch_size,) containing frequencies.
Returns:
torch.Tensor: Encoded frequency embeddings of shape (batch_size, embed_dim).
"""
batch_size = frequencies.size(0)
# Fixed normalization: Scale frequencies to [0, 1]
normalized_freq = (frequencies - self.freq_min) / (self.freq_max - self.freq_min)
# Generate positional features using sine and cosine. `frequencies` supplies the device
# via new_tensor/new_zeros instead of a bare `.device` read, which crashes Dynamo on
# some torch builds (see TimestepEmbedder in modules/dit.py for the same issue).
positions = frequencies.new_tensor(range(self.embed_dim), dtype=torch.float32)
scaling_factors = 1 / (10000 ** (2 * (positions // 2) / self.embed_dim))
frequency_features = normalized_freq.unsqueeze(1) * scaling_factors # Shape: (batch_size, embed_dim)
# Apply sine to even indices and cosine to odd indices
encoded_freq = frequencies.new_zeros(batch_size, self.embed_dim, dtype=torch.get_default_dtype())
encoded_freq[:, 0::2] = torch.sin(frequency_features[:, 0::2]) # Sine for even indices
encoded_freq[:, 1::2] = torch.cos(frequency_features[:, 1::2]) # Cosine for odd indices
return encoded_freq
def get_2d_sincos_pos_embed(embed_dim, grid_size, cls_token=False, extra_tokens=0):
"""
grid_size: int of the grid height and width
return:
pos_embed: [grid_size*grid_size, embed_dim] or [1+grid_size*grid_size, embed_dim] (w/ or w/o cls_token)
"""
grid_h = np.arange(grid_size[0], dtype=np.float32)
grid_w = np.arange(grid_size[1], dtype=np.float32)
grid = np.meshgrid(grid_w, grid_h) # here w goes first
grid = np.stack(grid, axis=0)
grid = grid.reshape([2, 1, grid_size[0], grid_size[1]])
pos_embed = get_2d_sincos_pos_embed_from_grid(embed_dim, grid)
if cls_token and extra_tokens > 0:
pos_embed = np.concatenate([np.zeros([extra_tokens, embed_dim]), pos_embed], axis=0)
return pos_embed
def get_2d_sincos_pos_embed_from_grid(embed_dim, grid):
assert embed_dim % 2 == 0
# use half of dimensions to encode grid_h
emb_h = get_1d_sincos_pos_embed_from_grid(embed_dim // 2, grid[0]) # (H*W, D/2)
emb_w = get_1d_sincos_pos_embed_from_grid(embed_dim // 2, grid[1]) # (H*W, D/2)
emb = np.concatenate([emb_h, emb_w], axis=1) # (H*W, D)
return emb
def get_1d_sincos_pos_embed_from_grid(embed_dim, pos):
"""
embed_dim: output dimension for each position
pos: a list of positions to be encoded: size (M,)
out: (M, D)
"""
assert embed_dim % 2 == 0
omega = np.arange(embed_dim // 2, dtype=np.float64)
omega /= embed_dim / 2.
omega = 1. / 10000**omega # (D/2,)
pos = pos.reshape(-1) # (M,)
out = np.einsum('m,d->md', pos, omega) # (M, D/2), outer product
emb_sin = np.sin(out) # (M, D/2)
emb_cos = np.cos(out) # (M, D/2)
emb = np.concatenate([emb_sin, emb_cos], axis=1) # (M, D)
return emb
class TimestepEmbedder(nn.Module):
"""
Embeds scalar timesteps into vector representations.
"""
def __init__(self, hidden_size, frequency_embedding_size=256, max_period=10000):
super().__init__()
self.mlp = nn.Sequential(
nn.Linear(frequency_embedding_size, hidden_size, bias=True),
nn.SiLU(),
nn.Linear(hidden_size, hidden_size, bias=True),
)
self.frequency_embedding_size = frequency_embedding_size
# https://github.com/openai/glide-text2im/blob/main/glide_text2im/nn.py
half = frequency_embedding_size // 2
freqs = torch.exp(
-math.log(max_period) * torch.arange(start=0, end=half, dtype=torch.float32) / half
)
# Registered as a buffer (not recomputed per call) so it moves with the module's
# device/dtype casts. Under torch.compile, reading `t.device` here instead used to
# crash dynamo (ConstantVariable can't wrap torch.device on some builds); reusing the
# buffer's own device sidesteps that op entirely.
self.register_buffer("_freqs", freqs, persistent=False)
def timestep_embedding(self, t, dim):
"""
Create sinusoidal timestep embeddings.
:param t: a 1-D Tensor of N indices, one per batch element.
These may be fractional.
:param dim: the dimension of the output.
:return: an (N, D) Tensor of positional embeddings.
"""
args = t[:, None].float() * self._freqs[None]
embedding = torch.cat([torch.cos(args), torch.sin(args)], dim=-1)
if dim % 2:
embedding = torch.cat([embedding, torch.zeros_like(embedding[:, :1])], dim=-1)
return embedding
def forward(self, t):
t_freq = self.timestep_embedding(t, self.frequency_embedding_size)
t_emb = self.mlp(t_freq)
return t_emb
class STBlock(nn.Module):
# Used for temporal compression in context
def __init__(self, hidden_size, num_heads, mlp_ratio=4.0, dropout_rate=0.0,
norm_layer=nn.LayerNorm,
mlp_block='mlp',
act_layer=lambda: nn.GELU(approximate="tanh"),
**block_kwargs):
super().__init__()
mlp_hidden_dim = int(hidden_size * mlp_ratio)
self.norm1 = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
self.norm2 = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
self.norm3 = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
self.norm4 = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
self.space_attn = Attention(hidden_size, num_heads=num_heads, qkv_bias=True, qk_norm=True,
attn_drop=dropout_rate, proj_drop=dropout_rate, norm_layer=norm_layer, **block_kwargs)
self.time_attn = Attention(hidden_size, num_heads=num_heads, qkv_bias=True, qk_norm=True,
attn_drop=dropout_rate, proj_drop=dropout_rate, norm_layer=norm_layer, **block_kwargs)
if mlp_block == 'mlp':
self.space_mlp = Mlp(in_features=hidden_size, hidden_features=mlp_hidden_dim, act_layer=act_layer, norm_layer=norm_layer, drop=0)
self.time_mlp = Mlp(in_features=hidden_size, hidden_features=mlp_hidden_dim, act_layer=act_layer, norm_layer=norm_layer, drop=0)
elif mlp_block == 'swiglu':
self.space_mlp = SwiGLU(in_features=hidden_size, hidden_features=(mlp_hidden_dim*2)//3)
self.time_mlp = SwiGLU(in_features=hidden_size, hidden_features=(mlp_hidden_dim*2)//3)
else:
raise NotImplementedError(f"mlp_block {mlp_block} not implemented")
def forward(self, x):
B, F, N, D = x.shape
x = rearrange(x, 'b f n d -> (b f) n d')
x = x + self.space_attn(self.norm1(x))
x = x + self.space_mlp(self.norm2(x))
x = rearrange(x, '(b f) n d -> (b n) f d', b=B, f=F, n=N)
x = x + self.time_attn(self.norm3(x))
x = x + self.time_mlp(self.norm4(x))
x = rearrange(x, '(b n) f d -> b f n d', b=B, n=N, f=F)
return x
class DiTBlock(nn.Module):
"""
A DiT block with adaptive layer norm zero (adaLN-Zero) conditioning.
"""
def __init__(self, hidden_size, num_heads, mlp_ratio=4.0, dropout_rate=0.0, norm_layer=nn.LayerNorm, mlp_block='mlp', **block_kwargs):
super().__init__()
if isinstance(norm_layer, str):
norm_layer = get_norm_layer(norm_layer)
self.norm1 = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
self.attn = Attention(hidden_size, num_heads=num_heads, qkv_bias=True, qk_norm=True, norm_layer=norm_layer, attn_drop=dropout_rate, proj_drop=dropout_rate, **block_kwargs)
self.norm2 = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
mlp_hidden_dim = int(hidden_size * mlp_ratio)
if mlp_block == 'mlp':
approx_gelu = lambda: nn.GELU(approximate="tanh")
self.mlp = Mlp(in_features=hidden_size, hidden_features=mlp_hidden_dim, act_layer=approx_gelu, norm_layer=norm_layer, drop=0)
elif mlp_block == 'swiglu':
self.mlp = SwiGLU(in_features=hidden_size, hidden_features=(mlp_hidden_dim*2)//3, bias=True)
self.adaLN_modulation = nn.Sequential(
nn.SiLU(),
nn.Linear(hidden_size, 6 * hidden_size, bias=True)
)
def initialize_adaln_weights(self, gate_init_std=0.0):
nn.init.constant_(self.adaLN_modulation[-1].weight, 0)
nn.init.constant_(self.adaLN_modulation[-1].bias, 0)
if gate_init_std != 0.0:
hidden_size = self.adaLN_modulation[-1].out_features // 6
for gate_idx in (2, 5):
start = gate_idx * hidden_size
end = start + hidden_size
nn.init.normal_(self.adaLN_modulation[-1].weight[start:end], std=gate_init_std)
def forward(self, x, c):
shift_msa, scale_msa, gate_msa, shift_mlp, scale_mlp, gate_mlp = self.adaLN_modulation(c).chunk(6, dim=1)
x = x + gate_msa.unsqueeze(1) * self.attn(modulate(self.norm1(x), shift_msa, scale_msa))
x = x + gate_mlp.unsqueeze(1) * self.mlp(modulate(self.norm2(x), shift_mlp, scale_mlp))
return x
class CDiTBlock(nn.Module):
"""
A DiT block with cross-attention conditioning.
"""
def __init__(self, hidden_size, num_heads, mlp_ratio=4.0, norm_layer=nn.LayerNorm, mlp_block='mlp', **block_kwargs):
super().__init__()
self.norm1 = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
self.attn = Attention(hidden_size, num_heads=num_heads, qkv_bias=True, norm_layer=norm_layer, **block_kwargs)
self.norm2 = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
self.norm_cond = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
self.cttn = nn.MultiheadAttention(hidden_size, num_heads=num_heads, add_bias_kv=True, bias=True, batch_first=True, **block_kwargs)
self.adaLN_modulation = nn.Sequential(
nn.SiLU(),
nn.Linear(hidden_size, 11 * hidden_size, bias=True)
)
self.norm3 = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
mlp_hidden_dim = int(hidden_size * mlp_ratio)
if mlp_block == 'mlp':
approx_gelu = lambda: nn.GELU(approximate="tanh")
self.mlp = Mlp(in_features=hidden_size, hidden_features=mlp_hidden_dim, act_layer=approx_gelu, norm_layer=norm_layer, drop=0)
elif mlp_block == 'swiglu':
self.mlp = SwiGLU(in_features=hidden_size, hidden_features=(mlp_hidden_dim*2)//3, bias=True)
def initialize_adaln_weights(self, gate_init_std=0.0):
nn.init.constant_(self.adaLN_modulation[-1].weight, 0)
nn.init.constant_(self.adaLN_modulation[-1].bias, 0)
if gate_init_std != 0.0:
hidden_size = self.adaLN_modulation[-1].out_features // 11
for gate_idx in (2, 7, 10):
start = gate_idx * hidden_size
end = start + hidden_size
nn.init.normal_(self.adaLN_modulation[-1].weight[start:end], std=gate_init_std)
def forward(self, x, c, x_cond):
shift_msa, scale_msa, gate_msa, shift_ca_xcond, scale_ca_xcond, shift_ca_x, scale_ca_x, gate_ca_x, shift_mlp, scale_mlp, gate_mlp = self.adaLN_modulation(c).chunk(11, dim=1)
x = x + gate_msa.unsqueeze(1) * self.attn(modulate(self.norm1(x), shift_msa, scale_msa))
x_cond_norm = modulate(self.norm_cond(x_cond), shift_ca_xcond, scale_ca_xcond)
x = x + gate_ca_x.unsqueeze(1) * self.cttn(query=modulate(self.norm2(x), shift_ca_x, scale_ca_x), key=x_cond_norm, value=x_cond_norm, need_weights=False)[0]
x = x + gate_mlp.unsqueeze(1) * self.mlp(modulate(self.norm3(x), shift_mlp, scale_mlp))
return x
class STDiTBlock(nn.Module):
"""
A DiT block with adaptive layer norm zero (adaLN-Zero) conditioning.
"""
def __init__(self, hidden_size, num_heads, mlp_ratio=4.0, dropout_rate=0.0, causal_time_attn=False, modulate_time_attn=False, norm_layer=nn.LayerNorm, mlp_block='mlp', **block_kwargs):
super().__init__()
self.norm1 = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
self.space_attn = Attention(hidden_size, num_heads=num_heads, qkv_bias=True, qk_norm=True, norm_layer=norm_layer, attn_drop=dropout_rate, proj_drop=dropout_rate, **block_kwargs)
self.time_attn = Attention(hidden_size, num_heads=num_heads, qkv_bias=True, qk_norm=True, norm_layer=norm_layer, attn_drop=dropout_rate, proj_drop=dropout_rate, **block_kwargs)
self.norm2 = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
self.norm3 = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
self.norm4 = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
mlp_hidden_dim = int(hidden_size * mlp_ratio)
if mlp_block == 'mlp':
approx_gelu = lambda: nn.GELU(approximate="tanh")
self.space_mlp = Mlp(in_features=hidden_size, hidden_features=mlp_hidden_dim, act_layer=approx_gelu, norm_layer=None, drop=0)
self.time_mlp = Mlp(in_features=hidden_size, hidden_features=mlp_hidden_dim, act_layer=approx_gelu, norm_layer=None, drop=0)
elif mlp_block == 'swiglu':
self.space_mlp = SwiGLU(in_features=hidden_size, hidden_features=(mlp_hidden_dim*2)//3)
self.time_mlp = SwiGLU(in_features=hidden_size, hidden_features=(mlp_hidden_dim*2)//3)
else:
raise NotImplementedError(f"mlp_block {mlp_block} not implemented")
self.adaLN_modulation = nn.Sequential(
nn.SiLU(),
nn.Linear(hidden_size, 9 * hidden_size, bias=True)
)
self.causal_time_attn = causal_time_attn
self.modulate_time_attn = modulate_time_attn
self.layer_idx = block_kwargs.get("layer_idx")
self.log_adaln_mean_abs = False
self._last_adaln_mean_abs = None
if modulate_time_attn:
self.adaLN_time_attn_modulation = nn.Sequential(
nn.SiLU(),
nn.Linear(hidden_size, 3 * hidden_size, bias=True)
)
self.norm_time_attn = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
# initialize
nn.init.constant_(self.adaLN_time_attn_modulation[-1].weight, 0)
nn.init.constant_(self.adaLN_time_attn_modulation[-1].bias, 0)
else:
self.norm_time_attn = nn.Identity()
def initialize_adaln_weights(self, gate_init_std=0.0):
nn.init.constant_(self.adaLN_modulation[-1].weight, 0)
nn.init.constant_(self.adaLN_modulation[-1].bias, 0)
if gate_init_std != 0.0:
hidden_size = self.adaLN_modulation[-1].out_features // 9
for gate_idx in (2, 5, 8):
start = gate_idx * hidden_size
end = start + hidden_size
nn.init.normal_(self.adaLN_modulation[-1].weight[start:end], std=gate_init_std)
if hasattr(self, "adaLN_time_attn_modulation"):
nn.init.constant_(self.adaLN_time_attn_modulation[-1].weight, 0)
nn.init.constant_(self.adaLN_time_attn_modulation[-1].bias, 0)
if gate_init_std != 0.0:
hidden_size = self.adaLN_time_attn_modulation[-1].out_features // 3
start = 2 * hidden_size
end = start + hidden_size
nn.init.normal_(self.adaLN_time_attn_modulation[-1].weight[start:end], std=gate_init_std)
def _collect_adaln_mean_abs(self, **tensors):
self._last_adaln_mean_abs = {
name: tensor.detach().abs().flatten(1).mean(dim=1)
for name, tensor in tensors.items()
}
def forward(self, x, c):
B, F, N, D = x.shape
# chunk into 9 [B, C] vectors
(shift_msa, scale_msa, gate_msa,
shift_mlp_s, scale_mlp_s, gate_mlp_s,
shift_mlp_t, scale_mlp_t, gate_mlp_t) = self.adaLN_modulation(c).chunk(9, dim=-1)
x_modulated = modulate(self.norm1(x), shift_msa, scale_msa)
x_modulated = rearrange(x_modulated, 'b f n d -> (b f) n d', b=B, f=F)
x_ = self.space_attn(x_modulated)
x_ = rearrange(x_, '(b f) n d -> b f n d', b=B, f=F)
x = x + _broadcast_gate(gate_msa, x) * x_
x_modulated = modulate(self.norm2(x), shift_mlp_s, scale_mlp_s)
x = x + _broadcast_gate(gate_mlp_s, x) * self.space_mlp(x_modulated)
# β temporal attention path β
if self.modulate_time_attn:
shift_mta, scale_mta, gate_mta = self.adaLN_time_attn_modulation(c).chunk(3, dim=-1)
else:
shift_mta, scale_mta, gate_mta = torch.zeros_like(shift_mlp_t), torch.zeros_like(scale_mlp_t), torch.ones_like(gate_mlp_t)
if self.log_adaln_mean_abs:
self._collect_adaln_mean_abs(
msa_shift=shift_msa,
msa_scale=scale_msa,
msa_gate=gate_msa,
mlp_s_shift=shift_mlp_s,
mlp_s_scale=scale_mlp_s,
mlp_s_gate=gate_mlp_s,
mta_shift=shift_mta,
mta_scale=scale_mta,
mta_gate=gate_mta,
mlp_t_shift=shift_mlp_t,
mlp_t_scale=scale_mlp_t,
mlp_t_gate=gate_mlp_t,
)
x_modulated = modulate(self.norm_time_attn(x), shift_mta, scale_mta)
x_modulated = rearrange(x_modulated, 'b f n d -> (b n) f d', b=B, f=F, n=N)
# x supplies the device via new_ones instead of a bare `.device` read, which crashes
# Dynamo on some torch builds (see TimestepEmbedder above for the same issue).
time_attn_mask = torch.tril(x.new_ones(F, F, dtype=torch.get_default_dtype())) if self.causal_time_attn else None
x_ = self.time_attn(x_modulated, attn_mask=time_attn_mask)
x_ = rearrange(x_, '(b n) f d -> b f n d', b=B, n=N, f=F)
x = x + _broadcast_gate(gate_mta, x) * x_
x_modulated = modulate(self.norm3(x), shift_mlp_t, scale_mlp_t)
x = x + _broadcast_gate(gate_mlp_t, x) * self.time_mlp(x_modulated)
return x
class FinalLayer(nn.Module):
"""
The final layer of DiT.
"""
def __init__(self, hidden_size, patch_size, out_channels, norm_layer=nn.LayerNorm, act_layer=nn.SiLU):
super().__init__()
self.norm_final = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
self.linear = nn.Linear(hidden_size, patch_size * patch_size * out_channels, bias=True)
self.adaLN_modulation = nn.Sequential(
act_layer(),
nn.Linear(hidden_size, 2 * hidden_size, bias=True)
)
def forward(self, x, c):
shift, scale = self.adaLN_modulation(c).chunk(2, dim=-1)
x = modulate(self.norm_final(x), shift, scale)
x = self.linear(x)
return x
class STDiTBlockWithSpatialL2(STDiTBlock):
"""
STDiTBlock augmented with per-token gated spatial conditioning from L2 tokens.
z_spatial (B, F, N, D) β (shift_s, scale_s, gate_s) per token via a small MLP.
Applied as an additive gated adaLN before the standard block operations:
x = x + gate_s * modulate(spatial_norm(x), shift_s, scale_s)
Zero-init of spatial_to_mod guarantees a no-op at the start of training,
so pre-trained STDiTDF weights can be fine-tuned without disruption.
"""
def __init__(self, hidden_size, num_heads, norm_layer=nn.LayerNorm, **kwargs):
super().__init__(hidden_size, num_heads, norm_layer=norm_layer, **kwargs)
self.spatial_norm = norm_layer(hidden_size, elementwise_affine=False, eps=1e-6)
self.spatial_to_mod = nn.Sequential(
nn.SiLU(),
nn.Linear(hidden_size, 3 * hidden_size, bias=True),
)
# Small weight init so shift/scale start as genuine L2-dependent perturbations.
# Gate bias initialised to 2.0 β sigmoid(2.0) β 0.88, so the gate starts open
# and the model must learn to close it rather than having to learn to open it.
nn.init.normal_(self.spatial_to_mod[-1].weight, std=0.02)
nn.init.zeros_(self.spatial_to_mod[-1].bias)
self.spatial_to_mod[-1].bias.data[2 * hidden_size:].fill_(2.0)
def forward(self, x, c, z_spatial):
# z_spatial: (B, F, N, D) β pre-computed L2 spatial tokens (patchified + position)
shift_s, scale_s, gate_s = self.spatial_to_mod(z_spatial).chunk(3, dim=-1)
x = x + torch.sigmoid(gate_s) * modulate(self.spatial_norm(x), shift_s, scale_s)
return super().forward(x, c)
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