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5 Commits
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0d1c07c803 | ||
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a389f81138 | ||
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5063d192b6 |
@@ -430,8 +430,8 @@ images = torch.randn(4, 3, 256, 256).cuda()
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# precompute the text and image embeddings
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# here using the diffusion prior class, but could be done with CLIP alone
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clip_image_embeds = diffusion_prior.get_image_embed(images)
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clip_text_embeds = diffusion_prior.get_text_cond(text).get('text_embed')
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clip_image_embeds = diffusion_prior.clip.embed_image(images).image_embed
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clip_text_embeds = diffusion_prior.clip.embed_text(text).text_embed
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# feed text and images into diffusion prior network
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@@ -499,9 +499,7 @@ loss.backward()
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Although there is the possibility they are using an unreleased, more powerful CLIP, you can use one of the released ones, if you do not wish to train your own CLIP from scratch. This will also allow the community to more quickly validate the conclusions of the paper.
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First you'll need to install <a href="https://github.com/openai/CLIP#usage">the prerequisites</a>
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Then to use a pretrained OpenAI CLIP, simply import `OpenAIClipAdapter` and pass it into the `DiffusionPrior` or `Decoder` like so
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To use a pretrained OpenAI CLIP, simply import `OpenAIClipAdapter` and pass it into the `DiffusionPrior` or `Decoder` like so
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```python
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import torch
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@@ -741,6 +739,7 @@ Once built, images will be saved to the same directory the command is invoked
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- [ ] become an expert with unets, cleanup unet code, make it fully configurable, port all learnings over to https://github.com/lucidrains/x-unet
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- [ ] copy the cascading ddpm code to a separate repo (perhaps https://github.com/lucidrains/denoising-diffusion-pytorch) as the main contribution of dalle2 really is just the prior network
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- [ ] transcribe code to Jax, which lowers the activation energy for distributed training, given access to TPUs
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- [ ] just take care of the training for the decoder in a wrapper class, as each unet in the cascade will need its own optimizer
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- [ ] train on a toy task, offer in colab
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- [ ] think about how best to design a declarative training config that handles preencoding for prior and training of multiple networks in decoder
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- [ ] extend diffusion head to use diffusion-gan (potentially using lightweight-gan) to speed up inference
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@@ -3,6 +3,7 @@ from tqdm import tqdm
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from inspect import isfunction
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from functools import partial
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from contextlib import contextmanager
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from collections import namedtuple
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import torch
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import torch.nn.functional as F
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@@ -102,6 +103,9 @@ def unnormalize_img(normed_img):
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# clip related adapters
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EmbeddedText = namedtuple('EmbedTextReturn', ['text_embed', 'text_encodings', 'text_mask'])
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EmbeddedImage = namedtuple('EmbedImageReturn', ['image_embed', 'image_encodings'])
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class BaseClipAdapter(nn.Module):
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def __init__(self, clip):
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super().__init__()
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@@ -153,7 +157,7 @@ class XClipAdapter(BaseClipAdapter):
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encoder_output = self.clip.text_transformer(text)
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text_cls, text_encodings = encoder_output[:, 0], encoder_output[:, 1:]
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text_embed = self.clip.to_text_latent(text_cls)
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return l2norm(text_embed), text_encodings, text_mask
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return EmbeddedText(l2norm(text_embed), text_encodings, text_mask)
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@torch.no_grad()
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def embed_image(self, image):
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@@ -161,18 +165,14 @@ class XClipAdapter(BaseClipAdapter):
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encoder_output = self.clip.visual_transformer(image)
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image_cls, image_encodings = encoder_output[:, 0], encoder_output[:, 1:]
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image_embed = self.clip.to_visual_latent(image_cls)
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return l2norm(image_embed), image_encodings
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return EmbeddedImage(l2norm(image_embed), image_encodings)
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class OpenAIClipAdapter(BaseClipAdapter):
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def __init__(
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self,
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name = 'ViT-B/32'
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):
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try:
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import clip
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except ImportError:
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print('you must install openai clip in order to use this adapter - `pip install git+https://github.com/openai/CLIP.git` - more instructions at https://github.com/openai/CLIP#usage')
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import clip
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openai_clip, _ = clip.load(name)
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super().__init__(openai_clip)
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@@ -219,7 +219,7 @@ class OpenAIClipAdapter(BaseClipAdapter):
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text_embed = self.clip.encode_text(text)
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text_encodings = self.text_encodings
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del self.text_encodings
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return text_embed.float(), text_encodings.float(), text_mask
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return EmbeddedText(text_embed.float(), text_encodings.float(), text_mask)
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@torch.no_grad()
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def embed_image(self, image):
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@@ -227,7 +227,7 @@ class OpenAIClipAdapter(BaseClipAdapter):
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image = resize_image_to(image, self.image_size)
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image = self.clip_normalize(unnormalize_img(image))
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image_embed = self.clip.encode_image(image)
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return image_embed.float(), None
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return EmbeddedImage(image_embed.float(), None)
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# classifier free guidance functions
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@@ -684,14 +684,14 @@ class DiffusionPriorNetwork(nn.Module):
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# classifier free guidance
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cond_prob_mask = prob_mask_like((batch,), cond_drop_prob, device = device)
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cond_prob_mask = rearrange(cond_prob_mask, 'b -> b 1')
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keep_mask = prob_mask_like((batch,), 1 - cond_drop_prob, device = device)
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keep_mask = rearrange(keep_mask, 'b -> b 1')
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mask &= cond_prob_mask
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mask &= keep_mask
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# whether text embedding is masked or not depends on the classifier free guidance conditional masking
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mask = torch.cat((mask, cond_prob_mask), dim = 1)
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mask = torch.cat((mask, keep_mask), dim = 1)
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# whether text embedding is used for conditioning depends on whether text encodings are available for attention (for classifier free guidance, even though it seems from the paper it was not used in the prior ddpm, as the objective is different)
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# but let's just do it right
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@@ -1204,8 +1204,8 @@ class Unet(nn.Module):
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# conditional dropout
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cond_prob_mask = prob_mask_like((batch_size,), cond_drop_prob, device = device)
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cond_prob_mask = rearrange(cond_prob_mask, 'b -> b 1 1')
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keep_mask = prob_mask_like((batch_size,), 1 - cond_drop_prob, device = device)
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keep_mask = rearrange(keep_mask, 'b -> b 1 1')
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# mask out image embedding depending on condition dropout
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# for classifier free guidance
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@@ -1216,7 +1216,7 @@ class Unet(nn.Module):
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image_tokens = self.image_to_cond(image_embed)
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image_tokens = torch.where(
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cond_prob_mask,
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keep_mask,
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image_tokens,
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self.null_image_embed
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)
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@@ -1228,7 +1228,7 @@ class Unet(nn.Module):
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if exists(text_encodings) and self.cond_on_text_encodings:
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text_tokens = self.text_to_cond(text_encodings)
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text_tokens = torch.where(
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cond_prob_mask,
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keep_mask,
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text_tokens,
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self.null_text_embed[:, :text_tokens.shape[1]]
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)
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@@ -1632,4 +1632,3 @@ class DALLE2(nn.Module):
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return images[0]
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return images
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29
dalle2_pytorch/optimizer.py
Normal file
29
dalle2_pytorch/optimizer.py
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@@ -0,0 +1,29 @@
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from torch.optim import AdamW, Adam
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def separate_weight_decayable_params(params):
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no_wd_params = set([param for param in params if param.ndim < 2])
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wd_params = set(params) - no_wd_params
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return wd_params, no_wd_params
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def get_optimizer(
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params,
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lr = 3e-4,
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wd = 1e-2,
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betas = (0.9, 0.999),
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filter_by_requires_grad = False
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):
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if filter_by_requires_grad:
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params = list(filter(lambda t: t.requires_grad, params))
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if wd == 0:
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return Adam(params, lr = lr, betas = betas)
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params = set(params)
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wd_params, no_wd_params = separate_weight_decayable_params(params)
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param_groups = [
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{'params': list(wd_params)},
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{'params': list(no_wd_params), 'weight_decay': 0},
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]
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return AdamW(param_groups, lr = lr, weight_decay = wd, betas = betas)
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3
setup.py
3
setup.py
@@ -10,7 +10,7 @@ setup(
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'dream = dalle2_pytorch.cli:dream'
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],
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},
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version = '0.0.67',
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version = '0.0.73',
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license='MIT',
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description = 'DALL-E 2',
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author = 'Phil Wang',
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@@ -23,6 +23,7 @@ setup(
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],
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install_requires=[
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'click',
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'clip-anytorch',
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'einops>=0.4',
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'einops-exts>=0.0.3',
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'kornia>=0.5.4',
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