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https://github.com/lucidrains/DALLE2-pytorch.git
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start a file for all attention-related modules, use attention-based upsampling in the unets in dalle-2
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125
dalle2_pytorch/attention.py
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125
dalle2_pytorch/attention.py
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import torch
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from torch import nn, einsum
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import torch.nn.functional as F
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from einops import rearrange, repeat
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class LayerNormChan(nn.Module):
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def __init__(
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self,
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dim,
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eps = 1e-5
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):
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super().__init__()
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self.eps = eps
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self.gamma = nn.Parameter(torch.ones(1, dim, 1, 1))
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def forward(self, x):
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var = torch.var(x, dim = 1, unbiased = False, keepdim = True)
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mean = torch.mean(x, dim = 1, keepdim = True)
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return (x - mean) / (var + self.eps).sqrt() * self.gamma
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# attention-based upsampling
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# from https://arxiv.org/abs/2112.11435
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class QueryAndAttend(nn.Module):
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def __init__(
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self,
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*,
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dim,
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num_queries = 1,
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dim_head = 32,
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heads = 8,
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window_size = 3
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):
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super().__init__()
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self.scale = dim_head ** -0.5
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inner_dim = dim_head * heads
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self.heads = heads
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self.dim_head = dim_head
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self.window_size = window_size
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self.num_queries = num_queries
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self.rel_pos_bias = nn.Parameter(torch.randn(heads, num_queries, window_size * window_size, 1, 1))
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self.queries = nn.Parameter(torch.randn(heads, num_queries, dim_head))
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self.to_kv = nn.Conv2d(dim, dim_head * 2, 1, bias = False)
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self.to_out = nn.Conv2d(inner_dim, dim, 1, bias = False)
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def forward(self, x):
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"""
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einstein notation
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b - batch
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h - heads
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l - num queries
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d - head dimension
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x - height
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y - width
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j - source sequence for attending to (kernel size squared in this case)
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"""
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wsz, heads, dim_head, num_queries = self.window_size, self.heads, self.dim_head, self.num_queries
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batch, _, height, width = x.shape
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is_one_query = self.num_queries == 1
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# queries, keys, values
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q = self.queries * self.scale
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k, v = self.to_kv(x).chunk(2, dim = 1)
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# similarities
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sim = einsum('h l d, b d x y -> b h l x y', q, k)
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sim = rearrange(sim, 'b ... x y -> b (...) x y')
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# unfold the similarity scores, with float(-inf) as padding value
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mask_value = -torch.finfo(sim.dtype).max
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sim = F.pad(sim, ((wsz // 2,) * 4), value = mask_value)
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sim = F.unfold(sim, kernel_size = wsz)
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sim = rearrange(sim, 'b (h l j) (x y) -> b h l j x y', h = heads, l = num_queries, x = height, y = width)
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# rel pos bias
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sim = sim + self.rel_pos_bias
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# numerically stable attention
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sim = sim - sim.amax(dim = -3, keepdim = True).detach()
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attn = sim.softmax(dim = -3)
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# unfold values
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v = F.pad(v, ((wsz // 2,) * 4), value = 0.)
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v = F.unfold(v, kernel_size = wsz)
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v = rearrange(v, 'b (d j) (x y) -> b d j x y', d = dim_head, x = height, y = width)
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# aggregate values
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out = einsum('b h l j x y, b d j x y -> b l h d x y', attn, v)
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# combine heads
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out = rearrange(out, 'b l h d x y -> (b l) (h d) x y')
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out = self.to_out(out)
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out = rearrange(out, '(b l) d x y -> b l d x y', b = batch)
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# return original input if one query
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if is_one_query:
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out = rearrange(out, 'b 1 ... -> b ...')
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return out
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class QueryAttnUpsample(nn.Module):
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def __init__(self, dim, **kwargs):
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super().__init__()
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self.norm = LayerNormChan(dim)
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self.qna = QueryAndAttend(dim = dim, num_queries = 4, **kwargs)
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def forward(self, x):
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x = self.norm(x)
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out = self.qna(x)
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out = rearrange(out, 'b (w1 w2) c h w -> b c (h w1) (w w2)', w1 = 2, w2 = 2)
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return out
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@@ -17,6 +17,7 @@ from kornia.filters import gaussian_blur2d
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from dalle2_pytorch.tokenizer import tokenizer
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from dalle2_pytorch.vqgan_vae import NullVQGanVAE, VQGanVAE
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from dalle2_pytorch.attention import QueryAttnUpsample
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# use x-clip
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@@ -692,7 +693,7 @@ class DiffusionPrior(nn.Module):
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# decoder
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def Upsample(dim):
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return nn.ConvTranspose2d(dim, dim, 4, 2, 1)
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return QueryAttnUpsample(dim)
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def Downsample(dim):
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return nn.Conv2d(dim, dim, 4, 2, 1)
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@@ -13,6 +13,8 @@ import torchvision
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from einops import rearrange, reduce, repeat
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from dalle2_pytorch.attention import QueryAttnUpsample
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# constants
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MList = nn.ModuleList
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@@ -243,111 +245,6 @@ class ResBlock(nn.Module):
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def forward(self, x):
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return self.net(x) + x
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# attention-based upsampling
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# from https://arxiv.org/abs/2112.11435
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class QueryAndAttend(nn.Module):
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def __init__(
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self,
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*,
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dim,
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num_queries = 1,
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dim_head = 32,
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heads = 8,
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window_size = 3
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):
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super().__init__()
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self.scale = dim_head ** -0.5
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inner_dim = dim_head * heads
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self.heads = heads
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self.dim_head = dim_head
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self.window_size = window_size
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self.num_queries = num_queries
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self.rel_pos_bias = nn.Parameter(torch.randn(heads, num_queries, window_size * window_size, 1, 1))
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self.queries = nn.Parameter(torch.randn(heads, num_queries, dim_head))
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self.to_kv = nn.Conv2d(dim, dim_head * 2, 1, bias = False)
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self.to_out = nn.Conv2d(inner_dim, dim, 1, bias = False)
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def forward(self, x):
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"""
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einstein notation
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b - batch
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h - heads
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l - num queries
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d - head dimension
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x - height
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y - width
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j - source sequence for attending to (kernel size squared in this case)
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"""
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wsz, heads, dim_head, num_queries = self.window_size, self.heads, self.dim_head, self.num_queries
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batch, _, height, width = x.shape
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is_one_query = self.num_queries == 1
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# queries, keys, values
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q = self.queries * self.scale
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k, v = self.to_kv(x).chunk(2, dim = 1)
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# similarities
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sim = einsum('h l d, b d x y -> b h l x y', q, k)
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sim = rearrange(sim, 'b ... x y -> b (...) x y')
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# unfold the similarity scores, with float(-inf) as padding value
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mask_value = -torch.finfo(sim.dtype).max
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sim = F.pad(sim, ((wsz // 2,) * 4), value = mask_value)
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sim = F.unfold(sim, kernel_size = wsz)
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sim = rearrange(sim, 'b (h l j) (x y) -> b h l j x y', h = heads, l = num_queries, x = height, y = width)
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# rel pos bias
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sim = sim + self.rel_pos_bias
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# numerically stable attention
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sim = sim - sim.amax(dim = -3, keepdim = True).detach()
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attn = sim.softmax(dim = -3)
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# unfold values
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v = F.pad(v, ((wsz // 2,) * 4), value = 0.)
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v = F.unfold(v, kernel_size = wsz)
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v = rearrange(v, 'b (d j) (x y) -> b d j x y', d = dim_head, x = height, y = width)
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# aggregate values
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out = einsum('b h l j x y, b d j x y -> b l h d x y', attn, v)
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# combine heads
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out = rearrange(out, 'b l h d x y -> (b l) (h d) x y')
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out = self.to_out(out)
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out = rearrange(out, '(b l) d x y -> b l d x y', b = batch)
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# return original input if one query
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if is_one_query:
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out = rearrange(out, 'b 1 ... -> b ...')
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return out
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class QueryAttnUpsample(nn.Module):
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def __init__(self, dim, **kwargs):
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super().__init__()
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self.norm = LayerNormChan(dim)
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self.qna = QueryAndAttend(dim = dim, num_queries = 4, **kwargs)
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def forward(self, x):
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x = self.norm(x)
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out = self.qna(x)
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out = rearrange(out, 'b (w1 w2) c h w -> b c (h w1) (w w2)', w1 = 2, w2 = 2)
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return out
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# vqgan attention layer
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class VQGanAttention(nn.Module):
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def __init__(
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