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import torch |
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from .sd_unet import Timesteps, ResnetBlock, AttentionBlock, PushBlock, DownSampler |
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from .tiler import TileWorker |
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class ControlNetConditioningLayer(torch.nn.Module): |
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def __init__(self, channels = (3, 16, 32, 96, 256, 320)): |
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super().__init__() |
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self.blocks = torch.nn.ModuleList([]) |
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self.blocks.append(torch.nn.Conv2d(channels[0], channels[1], kernel_size=3, padding=1)) |
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self.blocks.append(torch.nn.SiLU()) |
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for i in range(1, len(channels) - 2): |
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self.blocks.append(torch.nn.Conv2d(channels[i], channels[i], kernel_size=3, padding=1)) |
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self.blocks.append(torch.nn.SiLU()) |
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self.blocks.append(torch.nn.Conv2d(channels[i], channels[i+1], kernel_size=3, padding=1, stride=2)) |
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self.blocks.append(torch.nn.SiLU()) |
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self.blocks.append(torch.nn.Conv2d(channels[-2], channels[-1], kernel_size=3, padding=1)) |
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def forward(self, conditioning): |
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for block in self.blocks: |
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conditioning = block(conditioning) |
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return conditioning |
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class SDControlNet(torch.nn.Module): |
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def __init__(self, global_pool=False): |
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super().__init__() |
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self.time_proj = Timesteps(320) |
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self.time_embedding = torch.nn.Sequential( |
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torch.nn.Linear(320, 1280), |
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torch.nn.SiLU(), |
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torch.nn.Linear(1280, 1280) |
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) |
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self.conv_in = torch.nn.Conv2d(4, 320, kernel_size=3, padding=1) |
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self.controlnet_conv_in = ControlNetConditioningLayer(channels=(3, 16, 32, 96, 256, 320)) |
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self.blocks = torch.nn.ModuleList([ |
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ResnetBlock(320, 320, 1280), |
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AttentionBlock(8, 40, 320, 1, 768), |
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PushBlock(), |
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ResnetBlock(320, 320, 1280), |
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AttentionBlock(8, 40, 320, 1, 768), |
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PushBlock(), |
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DownSampler(320), |
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PushBlock(), |
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ResnetBlock(320, 640, 1280), |
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AttentionBlock(8, 80, 640, 1, 768), |
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PushBlock(), |
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ResnetBlock(640, 640, 1280), |
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AttentionBlock(8, 80, 640, 1, 768), |
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PushBlock(), |
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DownSampler(640), |
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PushBlock(), |
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ResnetBlock(640, 1280, 1280), |
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AttentionBlock(8, 160, 1280, 1, 768), |
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PushBlock(), |
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ResnetBlock(1280, 1280, 1280), |
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AttentionBlock(8, 160, 1280, 1, 768), |
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PushBlock(), |
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DownSampler(1280), |
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PushBlock(), |
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ResnetBlock(1280, 1280, 1280), |
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PushBlock(), |
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ResnetBlock(1280, 1280, 1280), |
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PushBlock(), |
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ResnetBlock(1280, 1280, 1280), |
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AttentionBlock(8, 160, 1280, 1, 768), |
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ResnetBlock(1280, 1280, 1280), |
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PushBlock() |
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]) |
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self.controlnet_blocks = torch.nn.ModuleList([ |
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torch.nn.Conv2d(320, 320, kernel_size=(1, 1)), |
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torch.nn.Conv2d(320, 320, kernel_size=(1, 1), bias=False), |
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torch.nn.Conv2d(320, 320, kernel_size=(1, 1), bias=False), |
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torch.nn.Conv2d(320, 320, kernel_size=(1, 1), bias=False), |
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torch.nn.Conv2d(640, 640, kernel_size=(1, 1)), |
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torch.nn.Conv2d(640, 640, kernel_size=(1, 1), bias=False), |
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torch.nn.Conv2d(640, 640, kernel_size=(1, 1), bias=False), |
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torch.nn.Conv2d(1280, 1280, kernel_size=(1, 1)), |
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torch.nn.Conv2d(1280, 1280, kernel_size=(1, 1), bias=False), |
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torch.nn.Conv2d(1280, 1280, kernel_size=(1, 1), bias=False), |
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torch.nn.Conv2d(1280, 1280, kernel_size=(1, 1), bias=False), |
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torch.nn.Conv2d(1280, 1280, kernel_size=(1, 1), bias=False), |
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torch.nn.Conv2d(1280, 1280, kernel_size=(1, 1), bias=False), |
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]) |
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self.global_pool = global_pool |
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def forward( |
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self, |
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sample, timestep, encoder_hidden_states, conditioning, |
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tiled=False, tile_size=64, tile_stride=32, |
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): |
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time_emb = self.time_proj(timestep[None]).to(sample.dtype) |
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time_emb = self.time_embedding(time_emb) |
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time_emb = time_emb.repeat(sample.shape[0], 1) |
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height, width = sample.shape[2], sample.shape[3] |
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hidden_states = self.conv_in(sample) + self.controlnet_conv_in(conditioning) |
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text_emb = encoder_hidden_states |
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res_stack = [hidden_states] |
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for i, block in enumerate(self.blocks): |
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if tiled and not isinstance(block, PushBlock): |
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_, _, inter_height, _ = hidden_states.shape |
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resize_scale = inter_height / height |
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hidden_states = TileWorker().tiled_forward( |
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lambda x: block(x, time_emb, text_emb, res_stack)[0], |
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hidden_states, |
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int(tile_size * resize_scale), |
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int(tile_stride * resize_scale), |
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tile_device=hidden_states.device, |
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tile_dtype=hidden_states.dtype |
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) |
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else: |
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hidden_states, _, _, _ = block(hidden_states, time_emb, text_emb, res_stack) |
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controlnet_res_stack = [block(res) for block, res in zip(self.controlnet_blocks, res_stack)] |
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if self.global_pool: |
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controlnet_res_stack = [res.mean(dim=(2, 3), keepdim=True) for res in controlnet_res_stack] |
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return controlnet_res_stack |
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def state_dict_converter(self): |
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return SDControlNetStateDictConverter() |
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class SDControlNetStateDictConverter: |
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def __init__(self): |
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pass |
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def from_diffusers(self, state_dict): |
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block_types = [ |
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'ResnetBlock', 'AttentionBlock', 'PushBlock', 'ResnetBlock', 'AttentionBlock', 'PushBlock', 'DownSampler', 'PushBlock', |
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'ResnetBlock', 'AttentionBlock', 'PushBlock', 'ResnetBlock', 'AttentionBlock', 'PushBlock', 'DownSampler', 'PushBlock', |
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'ResnetBlock', 'AttentionBlock', 'PushBlock', 'ResnetBlock', 'AttentionBlock', 'PushBlock', 'DownSampler', 'PushBlock', |
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'ResnetBlock', 'PushBlock', 'ResnetBlock', 'PushBlock', |
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'ResnetBlock', 'AttentionBlock', 'ResnetBlock', |
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'PopBlock', 'ResnetBlock', 'PopBlock', 'ResnetBlock', 'PopBlock', 'ResnetBlock', 'UpSampler', |
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'PopBlock', 'ResnetBlock', 'AttentionBlock', 'PopBlock', 'ResnetBlock', 'AttentionBlock', 'PopBlock', 'ResnetBlock', 'AttentionBlock', 'UpSampler', |
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'PopBlock', 'ResnetBlock', 'AttentionBlock', 'PopBlock', 'ResnetBlock', 'AttentionBlock', 'PopBlock', 'ResnetBlock', 'AttentionBlock', 'UpSampler', |
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'PopBlock', 'ResnetBlock', 'AttentionBlock', 'PopBlock', 'ResnetBlock', 'AttentionBlock', 'PopBlock', 'ResnetBlock', 'AttentionBlock' |
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] |
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controlnet_rename_dict = { |
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"controlnet_cond_embedding.conv_in.weight": "controlnet_conv_in.blocks.0.weight", |
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"controlnet_cond_embedding.conv_in.bias": "controlnet_conv_in.blocks.0.bias", |
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"controlnet_cond_embedding.blocks.0.weight": "controlnet_conv_in.blocks.2.weight", |
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"controlnet_cond_embedding.blocks.0.bias": "controlnet_conv_in.blocks.2.bias", |
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"controlnet_cond_embedding.blocks.1.weight": "controlnet_conv_in.blocks.4.weight", |
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"controlnet_cond_embedding.blocks.1.bias": "controlnet_conv_in.blocks.4.bias", |
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"controlnet_cond_embedding.blocks.2.weight": "controlnet_conv_in.blocks.6.weight", |
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"controlnet_cond_embedding.blocks.2.bias": "controlnet_conv_in.blocks.6.bias", |
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"controlnet_cond_embedding.blocks.3.weight": "controlnet_conv_in.blocks.8.weight", |
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"controlnet_cond_embedding.blocks.3.bias": "controlnet_conv_in.blocks.8.bias", |
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"controlnet_cond_embedding.blocks.4.weight": "controlnet_conv_in.blocks.10.weight", |
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"controlnet_cond_embedding.blocks.4.bias": "controlnet_conv_in.blocks.10.bias", |
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"controlnet_cond_embedding.blocks.5.weight": "controlnet_conv_in.blocks.12.weight", |
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"controlnet_cond_embedding.blocks.5.bias": "controlnet_conv_in.blocks.12.bias", |
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"controlnet_cond_embedding.conv_out.weight": "controlnet_conv_in.blocks.14.weight", |
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"controlnet_cond_embedding.conv_out.bias": "controlnet_conv_in.blocks.14.bias", |
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} |
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name_list = sorted([name for name in state_dict]) |
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rename_dict = {} |
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block_id = {"ResnetBlock": -1, "AttentionBlock": -1, "DownSampler": -1, "UpSampler": -1} |
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last_block_type_with_id = {"ResnetBlock": "", "AttentionBlock": "", "DownSampler": "", "UpSampler": ""} |
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for name in name_list: |
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names = name.split(".") |
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if names[0] in ["conv_in", "conv_norm_out", "conv_out"]: |
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pass |
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elif name in controlnet_rename_dict: |
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names = controlnet_rename_dict[name].split(".") |
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elif names[0] == "controlnet_down_blocks": |
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names[0] = "controlnet_blocks" |
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elif names[0] == "controlnet_mid_block": |
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names = ["controlnet_blocks", "12", names[-1]] |
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elif names[0] in ["time_embedding", "add_embedding"]: |
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if names[0] == "add_embedding": |
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names[0] = "add_time_embedding" |
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names[1] = {"linear_1": "0", "linear_2": "2"}[names[1]] |
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elif names[0] in ["down_blocks", "mid_block", "up_blocks"]: |
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if names[0] == "mid_block": |
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names.insert(1, "0") |
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block_type = {"resnets": "ResnetBlock", "attentions": "AttentionBlock", "downsamplers": "DownSampler", "upsamplers": "UpSampler"}[names[2]] |
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block_type_with_id = ".".join(names[:4]) |
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if block_type_with_id != last_block_type_with_id[block_type]: |
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block_id[block_type] += 1 |
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last_block_type_with_id[block_type] = block_type_with_id |
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while block_id[block_type] < len(block_types) and block_types[block_id[block_type]] != block_type: |
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block_id[block_type] += 1 |
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block_type_with_id = ".".join(names[:4]) |
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names = ["blocks", str(block_id[block_type])] + names[4:] |
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if "ff" in names: |
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ff_index = names.index("ff") |
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component = ".".join(names[ff_index:ff_index+3]) |
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component = {"ff.net.0": "act_fn", "ff.net.2": "ff"}[component] |
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names = names[:ff_index] + [component] + names[ff_index+3:] |
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if "to_out" in names: |
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names.pop(names.index("to_out") + 1) |
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else: |
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raise ValueError(f"Unknown parameters: {name}") |
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rename_dict[name] = ".".join(names) |
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state_dict_ = {} |
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for name, param in state_dict.items(): |
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if ".proj_in." in name or ".proj_out." in name: |
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param = param.squeeze() |
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if rename_dict[name] in [ |
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"controlnet_blocks.1.bias", "controlnet_blocks.2.bias", "controlnet_blocks.3.bias", "controlnet_blocks.5.bias", "controlnet_blocks.6.bias", |
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"controlnet_blocks.8.bias", "controlnet_blocks.9.bias", "controlnet_blocks.10.bias", "controlnet_blocks.11.bias", "controlnet_blocks.12.bias" |
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]: |
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continue |
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state_dict_[rename_dict[name]] = param |
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return state_dict_ |
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def from_civitai(self, state_dict): |
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rename_dict = { |
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"control_model.time_embed.0.weight": "time_embedding.0.weight", |
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"control_model.time_embed.0.bias": "time_embedding.0.bias", |
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"control_model.time_embed.2.weight": "time_embedding.2.weight", |
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"control_model.time_embed.2.bias": "time_embedding.2.bias", |
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"control_model.input_blocks.0.0.weight": "conv_in.weight", |
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"control_model.input_blocks.0.0.bias": "conv_in.bias", |
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"control_model.input_blocks.1.0.in_layers.0.weight": "blocks.0.norm1.weight", |
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"control_model.input_blocks.1.0.in_layers.0.bias": "blocks.0.norm1.bias", |
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"control_model.input_blocks.1.0.in_layers.2.weight": "blocks.0.conv1.weight", |
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"control_model.input_blocks.1.0.in_layers.2.bias": "blocks.0.conv1.bias", |
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"control_model.input_blocks.1.0.emb_layers.1.weight": "blocks.0.time_emb_proj.weight", |
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"control_model.input_blocks.1.0.emb_layers.1.bias": "blocks.0.time_emb_proj.bias", |
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"control_model.input_blocks.1.0.out_layers.0.weight": "blocks.0.norm2.weight", |
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"control_model.input_blocks.1.0.out_layers.0.bias": "blocks.0.norm2.bias", |
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"control_model.input_blocks.1.0.out_layers.3.weight": "blocks.0.conv2.weight", |
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"control_model.input_blocks.1.0.out_layers.3.bias": "blocks.0.conv2.bias", |
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"control_model.input_blocks.1.1.norm.weight": "blocks.1.norm.weight", |
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"control_model.input_blocks.1.1.norm.bias": "blocks.1.norm.bias", |
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"control_model.input_blocks.1.1.proj_in.weight": "blocks.1.proj_in.weight", |
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"control_model.input_blocks.1.1.proj_in.bias": "blocks.1.proj_in.bias", |
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"control_model.input_blocks.1.1.transformer_blocks.0.attn1.to_q.weight": "blocks.1.transformer_blocks.0.attn1.to_q.weight", |
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"control_model.input_blocks.1.1.transformer_blocks.0.attn1.to_k.weight": "blocks.1.transformer_blocks.0.attn1.to_k.weight", |
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"control_model.input_blocks.1.1.transformer_blocks.0.attn1.to_v.weight": "blocks.1.transformer_blocks.0.attn1.to_v.weight", |
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"control_model.input_blocks.1.1.transformer_blocks.0.attn1.to_out.0.weight": "blocks.1.transformer_blocks.0.attn1.to_out.weight", |
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"control_model.input_blocks.1.1.transformer_blocks.0.attn1.to_out.0.bias": "blocks.1.transformer_blocks.0.attn1.to_out.bias", |
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"control_model.input_blocks.1.1.transformer_blocks.0.ff.net.0.proj.weight": "blocks.1.transformer_blocks.0.act_fn.proj.weight", |
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"control_model.input_blocks.1.1.transformer_blocks.0.ff.net.0.proj.bias": "blocks.1.transformer_blocks.0.act_fn.proj.bias", |
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"control_model.input_blocks.1.1.transformer_blocks.0.ff.net.2.weight": "blocks.1.transformer_blocks.0.ff.weight", |
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"control_model.input_blocks.1.1.transformer_blocks.0.ff.net.2.bias": "blocks.1.transformer_blocks.0.ff.bias", |
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"control_model.input_blocks.1.1.transformer_blocks.0.attn2.to_q.weight": "blocks.1.transformer_blocks.0.attn2.to_q.weight", |
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"control_model.input_blocks.1.1.transformer_blocks.0.attn2.to_k.weight": "blocks.1.transformer_blocks.0.attn2.to_k.weight", |
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"control_model.input_blocks.1.1.transformer_blocks.0.attn2.to_v.weight": "blocks.1.transformer_blocks.0.attn2.to_v.weight", |
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"control_model.input_blocks.1.1.transformer_blocks.0.attn2.to_out.0.weight": "blocks.1.transformer_blocks.0.attn2.to_out.weight", |
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"control_model.input_blocks.1.1.transformer_blocks.0.attn2.to_out.0.bias": "blocks.1.transformer_blocks.0.attn2.to_out.bias", |
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"control_model.input_blocks.1.1.transformer_blocks.0.norm1.weight": "blocks.1.transformer_blocks.0.norm1.weight", |
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"control_model.input_blocks.1.1.transformer_blocks.0.norm1.bias": "blocks.1.transformer_blocks.0.norm1.bias", |
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"control_model.input_blocks.1.1.transformer_blocks.0.norm2.weight": "blocks.1.transformer_blocks.0.norm2.weight", |
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"control_model.input_blocks.1.1.transformer_blocks.0.norm2.bias": "blocks.1.transformer_blocks.0.norm2.bias", |
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"control_model.input_blocks.1.1.transformer_blocks.0.norm3.weight": "blocks.1.transformer_blocks.0.norm3.weight", |
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"control_model.input_blocks.1.1.transformer_blocks.0.norm3.bias": "blocks.1.transformer_blocks.0.norm3.bias", |
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"control_model.input_blocks.1.1.proj_out.weight": "blocks.1.proj_out.weight", |
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"control_model.input_blocks.1.1.proj_out.bias": "blocks.1.proj_out.bias", |
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"control_model.input_blocks.2.0.in_layers.0.weight": "blocks.3.norm1.weight", |
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"control_model.input_blocks.2.0.in_layers.0.bias": "blocks.3.norm1.bias", |
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"control_model.input_blocks.2.0.in_layers.2.weight": "blocks.3.conv1.weight", |
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"control_model.input_blocks.2.0.in_layers.2.bias": "blocks.3.conv1.bias", |
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"control_model.input_blocks.2.0.emb_layers.1.weight": "blocks.3.time_emb_proj.weight", |
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"control_model.input_blocks.2.0.emb_layers.1.bias": "blocks.3.time_emb_proj.bias", |
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"control_model.input_blocks.2.0.out_layers.0.weight": "blocks.3.norm2.weight", |
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"control_model.input_blocks.2.0.out_layers.0.bias": "blocks.3.norm2.bias", |
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"control_model.input_blocks.2.0.out_layers.3.weight": "blocks.3.conv2.weight", |
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"control_model.input_blocks.2.0.out_layers.3.bias": "blocks.3.conv2.bias", |
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"control_model.input_blocks.2.1.norm.weight": "blocks.4.norm.weight", |
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"control_model.input_blocks.2.1.norm.bias": "blocks.4.norm.bias", |
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"control_model.input_blocks.2.1.proj_in.weight": "blocks.4.proj_in.weight", |
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"control_model.input_blocks.2.1.proj_in.bias": "blocks.4.proj_in.bias", |
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"control_model.input_blocks.2.1.transformer_blocks.0.attn1.to_q.weight": "blocks.4.transformer_blocks.0.attn1.to_q.weight", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.attn1.to_k.weight": "blocks.4.transformer_blocks.0.attn1.to_k.weight", |
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"control_model.input_blocks.2.1.transformer_blocks.0.attn1.to_v.weight": "blocks.4.transformer_blocks.0.attn1.to_v.weight", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.attn1.to_out.0.weight": "blocks.4.transformer_blocks.0.attn1.to_out.weight", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.attn1.to_out.0.bias": "blocks.4.transformer_blocks.0.attn1.to_out.bias", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.ff.net.0.proj.weight": "blocks.4.transformer_blocks.0.act_fn.proj.weight", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.ff.net.0.proj.bias": "blocks.4.transformer_blocks.0.act_fn.proj.bias", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.ff.net.2.weight": "blocks.4.transformer_blocks.0.ff.weight", |
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"control_model.input_blocks.2.1.transformer_blocks.0.ff.net.2.bias": "blocks.4.transformer_blocks.0.ff.bias", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.attn2.to_q.weight": "blocks.4.transformer_blocks.0.attn2.to_q.weight", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.attn2.to_k.weight": "blocks.4.transformer_blocks.0.attn2.to_k.weight", |
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"control_model.input_blocks.2.1.transformer_blocks.0.attn2.to_v.weight": "blocks.4.transformer_blocks.0.attn2.to_v.weight", |
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"control_model.input_blocks.2.1.transformer_blocks.0.attn2.to_out.0.weight": "blocks.4.transformer_blocks.0.attn2.to_out.weight", |
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"control_model.input_blocks.2.1.transformer_blocks.0.attn2.to_out.0.bias": "blocks.4.transformer_blocks.0.attn2.to_out.bias", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.norm1.weight": "blocks.4.transformer_blocks.0.norm1.weight", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.norm1.bias": "blocks.4.transformer_blocks.0.norm1.bias", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.norm2.weight": "blocks.4.transformer_blocks.0.norm2.weight", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.norm2.bias": "blocks.4.transformer_blocks.0.norm2.bias", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.norm3.weight": "blocks.4.transformer_blocks.0.norm3.weight", |
|
"control_model.input_blocks.2.1.transformer_blocks.0.norm3.bias": "blocks.4.transformer_blocks.0.norm3.bias", |
|
"control_model.input_blocks.2.1.proj_out.weight": "blocks.4.proj_out.weight", |
|
"control_model.input_blocks.2.1.proj_out.bias": "blocks.4.proj_out.bias", |
|
"control_model.input_blocks.3.0.op.weight": "blocks.6.conv.weight", |
|
"control_model.input_blocks.3.0.op.bias": "blocks.6.conv.bias", |
|
"control_model.input_blocks.4.0.in_layers.0.weight": "blocks.8.norm1.weight", |
|
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"control_model.zero_convs.7.0.weight": "controlnet_blocks.7.weight", |
|
"control_model.zero_convs.7.0.bias": "controlnet_blocks.7.bias", |
|
"control_model.zero_convs.8.0.weight": "controlnet_blocks.8.weight", |
|
"control_model.zero_convs.8.0.bias": "controlnet_blocks.7.bias", |
|
"control_model.zero_convs.9.0.weight": "controlnet_blocks.9.weight", |
|
"control_model.zero_convs.9.0.bias": "controlnet_blocks.7.bias", |
|
"control_model.zero_convs.10.0.weight": "controlnet_blocks.10.weight", |
|
"control_model.zero_convs.10.0.bias": "controlnet_blocks.7.bias", |
|
"control_model.zero_convs.11.0.weight": "controlnet_blocks.11.weight", |
|
"control_model.zero_convs.11.0.bias": "controlnet_blocks.7.bias", |
|
"control_model.input_hint_block.0.weight": "controlnet_conv_in.blocks.0.weight", |
|
"control_model.input_hint_block.0.bias": "controlnet_conv_in.blocks.0.bias", |
|
"control_model.input_hint_block.2.weight": "controlnet_conv_in.blocks.2.weight", |
|
"control_model.input_hint_block.2.bias": "controlnet_conv_in.blocks.2.bias", |
|
"control_model.input_hint_block.4.weight": "controlnet_conv_in.blocks.4.weight", |
|
"control_model.input_hint_block.4.bias": "controlnet_conv_in.blocks.4.bias", |
|
"control_model.input_hint_block.6.weight": "controlnet_conv_in.blocks.6.weight", |
|
"control_model.input_hint_block.6.bias": "controlnet_conv_in.blocks.6.bias", |
|
"control_model.input_hint_block.8.weight": "controlnet_conv_in.blocks.8.weight", |
|
"control_model.input_hint_block.8.bias": "controlnet_conv_in.blocks.8.bias", |
|
"control_model.input_hint_block.10.weight": "controlnet_conv_in.blocks.10.weight", |
|
"control_model.input_hint_block.10.bias": "controlnet_conv_in.blocks.10.bias", |
|
"control_model.input_hint_block.12.weight": "controlnet_conv_in.blocks.12.weight", |
|
"control_model.input_hint_block.12.bias": "controlnet_conv_in.blocks.12.bias", |
|
"control_model.input_hint_block.14.weight": "controlnet_conv_in.blocks.14.weight", |
|
"control_model.input_hint_block.14.bias": "controlnet_conv_in.blocks.14.bias", |
|
"control_model.middle_block.0.in_layers.0.weight": "blocks.28.norm1.weight", |
|
"control_model.middle_block.0.in_layers.0.bias": "blocks.28.norm1.bias", |
|
"control_model.middle_block.0.in_layers.2.weight": "blocks.28.conv1.weight", |
|
"control_model.middle_block.0.in_layers.2.bias": "blocks.28.conv1.bias", |
|
"control_model.middle_block.0.emb_layers.1.weight": "blocks.28.time_emb_proj.weight", |
|
"control_model.middle_block.0.emb_layers.1.bias": "blocks.28.time_emb_proj.bias", |
|
"control_model.middle_block.0.out_layers.0.weight": "blocks.28.norm2.weight", |
|
"control_model.middle_block.0.out_layers.0.bias": "blocks.28.norm2.bias", |
|
"control_model.middle_block.0.out_layers.3.weight": "blocks.28.conv2.weight", |
|
"control_model.middle_block.0.out_layers.3.bias": "blocks.28.conv2.bias", |
|
"control_model.middle_block.1.norm.weight": "blocks.29.norm.weight", |
|
"control_model.middle_block.1.norm.bias": "blocks.29.norm.bias", |
|
"control_model.middle_block.1.proj_in.weight": "blocks.29.proj_in.weight", |
|
"control_model.middle_block.1.proj_in.bias": "blocks.29.proj_in.bias", |
|
"control_model.middle_block.1.transformer_blocks.0.attn1.to_q.weight": "blocks.29.transformer_blocks.0.attn1.to_q.weight", |
|
"control_model.middle_block.1.transformer_blocks.0.attn1.to_k.weight": "blocks.29.transformer_blocks.0.attn1.to_k.weight", |
|
"control_model.middle_block.1.transformer_blocks.0.attn1.to_v.weight": "blocks.29.transformer_blocks.0.attn1.to_v.weight", |
|
"control_model.middle_block.1.transformer_blocks.0.attn1.to_out.0.weight": "blocks.29.transformer_blocks.0.attn1.to_out.weight", |
|
"control_model.middle_block.1.transformer_blocks.0.attn1.to_out.0.bias": "blocks.29.transformer_blocks.0.attn1.to_out.bias", |
|
"control_model.middle_block.1.transformer_blocks.0.ff.net.0.proj.weight": "blocks.29.transformer_blocks.0.act_fn.proj.weight", |
|
"control_model.middle_block.1.transformer_blocks.0.ff.net.0.proj.bias": "blocks.29.transformer_blocks.0.act_fn.proj.bias", |
|
"control_model.middle_block.1.transformer_blocks.0.ff.net.2.weight": "blocks.29.transformer_blocks.0.ff.weight", |
|
"control_model.middle_block.1.transformer_blocks.0.ff.net.2.bias": "blocks.29.transformer_blocks.0.ff.bias", |
|
"control_model.middle_block.1.transformer_blocks.0.attn2.to_q.weight": "blocks.29.transformer_blocks.0.attn2.to_q.weight", |
|
"control_model.middle_block.1.transformer_blocks.0.attn2.to_k.weight": "blocks.29.transformer_blocks.0.attn2.to_k.weight", |
|
"control_model.middle_block.1.transformer_blocks.0.attn2.to_v.weight": "blocks.29.transformer_blocks.0.attn2.to_v.weight", |
|
"control_model.middle_block.1.transformer_blocks.0.attn2.to_out.0.weight": "blocks.29.transformer_blocks.0.attn2.to_out.weight", |
|
"control_model.middle_block.1.transformer_blocks.0.attn2.to_out.0.bias": "blocks.29.transformer_blocks.0.attn2.to_out.bias", |
|
"control_model.middle_block.1.transformer_blocks.0.norm1.weight": "blocks.29.transformer_blocks.0.norm1.weight", |
|
"control_model.middle_block.1.transformer_blocks.0.norm1.bias": "blocks.29.transformer_blocks.0.norm1.bias", |
|
"control_model.middle_block.1.transformer_blocks.0.norm2.weight": "blocks.29.transformer_blocks.0.norm2.weight", |
|
"control_model.middle_block.1.transformer_blocks.0.norm2.bias": "blocks.29.transformer_blocks.0.norm2.bias", |
|
"control_model.middle_block.1.transformer_blocks.0.norm3.weight": "blocks.29.transformer_blocks.0.norm3.weight", |
|
"control_model.middle_block.1.transformer_blocks.0.norm3.bias": "blocks.29.transformer_blocks.0.norm3.bias", |
|
"control_model.middle_block.1.proj_out.weight": "blocks.29.proj_out.weight", |
|
"control_model.middle_block.1.proj_out.bias": "blocks.29.proj_out.bias", |
|
"control_model.middle_block.2.in_layers.0.weight": "blocks.30.norm1.weight", |
|
"control_model.middle_block.2.in_layers.0.bias": "blocks.30.norm1.bias", |
|
"control_model.middle_block.2.in_layers.2.weight": "blocks.30.conv1.weight", |
|
"control_model.middle_block.2.in_layers.2.bias": "blocks.30.conv1.bias", |
|
"control_model.middle_block.2.emb_layers.1.weight": "blocks.30.time_emb_proj.weight", |
|
"control_model.middle_block.2.emb_layers.1.bias": "blocks.30.time_emb_proj.bias", |
|
"control_model.middle_block.2.out_layers.0.weight": "blocks.30.norm2.weight", |
|
"control_model.middle_block.2.out_layers.0.bias": "blocks.30.norm2.bias", |
|
"control_model.middle_block.2.out_layers.3.weight": "blocks.30.conv2.weight", |
|
"control_model.middle_block.2.out_layers.3.bias": "blocks.30.conv2.bias", |
|
"control_model.middle_block_out.0.weight": "controlnet_blocks.12.weight", |
|
"control_model.middle_block_out.0.bias": "controlnet_blocks.7.bias", |
|
} |
|
state_dict_ = {} |
|
for name in state_dict: |
|
if name in rename_dict: |
|
param = state_dict[name] |
|
if ".proj_in." in name or ".proj_out." in name: |
|
param = param.squeeze() |
|
state_dict_[rename_dict[name]] = param |
|
return state_dict_ |
|
|