moebius / model_lib /nets /utils.py
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from dataclasses import dataclass
from typing import Any, Dict, List, Optional, Tuple, Union
import torch
from diffusers.models.unets.unet_2d_condition import UNet2DConditionOutput
@dataclass
class CustomOutput(UNet2DConditionOutput):
"""
The output of [`UNet2DConditionModel`].
Args:
sample (`torch.Tensor` of shape `(batch_size, num_channels, height, width)`):
The hidden states output conditioned on `encoder_hidden_states` input. Output of last layer of model.
"""
sample: torch.Tensor = None
block_outputs: List[torch.Tensor] = None
cross_attention_maps: List[torch.Tensor] = None
common_args = {
"sample_size": None,
"in_channels": 4,
"out_channels": 4,
"center_input_sample": False,
"flip_sin_to_cos": True,
"freq_shift": 0,
"down_block_types": (
"CrossAttnDownBlock2D",
"CrossAttnDownBlock2D",
"CrossAttnDownBlock2D",
"DownBlock2D",
),
"mid_block_type": "UNetMidBlock2DCrossAttn",
"up_block_types": (
"UpBlock2D",
"CrossAttnUpBlock2D",
"CrossAttnUpBlock2D",
"CrossAttnUpBlock2D",
),
"only_cross_attention": False,
"block_out_channels": (320, 640, 1280, 1280),
"layers_per_block": 2,
"downsample_padding": 1,
"mid_block_scale_factor": 1,
"dropout": 0.0,
"act_fn": "silu",
"norm_num_groups": 32,
"norm_eps": 1e-5,
"cross_attention_dim": 1280,
"transformer_layers_per_block": 1,
"reverse_transformer_layers_per_block": None,
"encoder_hid_dim": None,
"encoder_hid_dim_type": None,
"attention_head_dim": 8,
"num_attention_heads": None,
"dual_cross_attention": False,
"use_linear_projection": False,
"class_embed_type": None,
"addition_embed_type": None,
"addition_time_embed_dim": None,
"num_class_embeds": None,
"upcast_attention": False,
"resnet_time_scale_shift": "default",
"resnet_skip_time_act": False,
"resnet_out_scale_factor": 1.0,
"time_embedding_type": "positional",
"time_embedding_dim": None,
"time_embedding_act_fn": None,
"timestep_post_act": None,
"time_cond_proj_dim": None,
"conv_in_kernel": 3,
"conv_out_kernel": 3,
"projection_class_embeddings_input_dim": None,
"attention_type": "default",
"class_embeddings_concat": False,
"mid_block_only_cross_attention": None,
"cross_attention_norm": None,
"addition_embed_type_num_heads": 64,
}