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import fixes.
Browse files
xora/models/autoencoders/video_autoencoder.py
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@@ -11,7 +11,7 @@ from torch.nn import functional
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from diffusers.utils import logging
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from
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from xora.models.autoencoders.conv_nd_factory import make_conv_nd, make_linear_nd
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from xora.models.autoencoders.pixel_norm import PixelNorm
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from xora.models.autoencoders.vae import AutoencoderKLWrapper
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from diffusers.utils import logging
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from xora.utils.torch_utils import Identity
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from xora.models.autoencoders.conv_nd_factory import make_conv_nd, make_linear_nd
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from xora.models.autoencoders.pixel_norm import PixelNorm
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from xora.models.autoencoders.vae import AutoencoderKLWrapper
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xora/schedulers/rf.py
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@@ -9,7 +9,7 @@ from diffusers.schedulers.scheduling_utils import SchedulerMixin
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from diffusers.utils import BaseOutput
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from torch import Tensor
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from
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def simple_diffusion_resolution_dependent_timestep_shift(
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from diffusers.utils import BaseOutput
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from torch import Tensor
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from xora.utils.torch_utils import append_dims
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def simple_diffusion_resolution_dependent_timestep_shift(
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xora/utils/torch_utils.py
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import torch
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def append_dims(x: torch.Tensor, target_dims: int) -> torch.Tensor:
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"""Appends dimensions to the end of a tensor until it has target_dims dimensions."""
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elif dims_to_append == 0:
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return x
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return x[(...,) + (None,) * dims_to_append]
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import torch
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from torch import nn
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def append_dims(x: torch.Tensor, target_dims: int) -> torch.Tensor:
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"""Appends dimensions to the end of a tensor until it has target_dims dimensions."""
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elif dims_to_append == 0:
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return x
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return x[(...,) + (None,) * dims_to_append]
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class Identity(nn.Module):
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"""A placeholder identity operator that is argument-insensitive."""
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def __init__(self, *args, **kwargs) -> None: # pylint: disable=unused-argument
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super().__init__()
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# pylint: disable=unused-argument
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def forward(self, x: torch.Tensor, *args, **kwargs) -> torch.Tensor:
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return x
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