Add support for converting between LoRA formats
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src/mflux/weights/lora_converter.py
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239
src/mflux/weights/lora_converter.py
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import logging
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import mlx.core as mx
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import torch
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from mlx.utils import tree_unflatten
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from safetensors import safe_open
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logger = logging.getLogger(__name__)
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# This script is based on `convert_flux_lora.py` from `kohya-ss/sd-scripts`.
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# For more info, see: https://github.com/kohya-ss/sd-scripts/blob/sd3/networks/convert_flux_lora.py
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class LoRAConverter:
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@staticmethod
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def load_weights(lora_path: str) -> dict:
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state_dict = LoRAConverter._load_pytorch_weights(lora_path)
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state_dict = LoRAConverter._convert_weights_to_diffusers(state_dict)
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state_dict = LoRAConverter._convert_to_mlx(state_dict)
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state_dict = list(state_dict.items())
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state_dict = tree_unflatten(state_dict)
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return state_dict
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@staticmethod
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def _load_pytorch_weights(lora_path: str) -> dict:
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state_dict = {}
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with safe_open(lora_path, framework="pt") as f:
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metadata = f.metadata()
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for k in f.keys():
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state_dict[k] = f.get_tensor(k)
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return state_dict
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@staticmethod
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def _convert_weights_to_diffusers(source: dict) -> dict:
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target = {}
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for i in range(19):
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LoRAConverter._convert_to_diffusers(
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source,
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target,
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f"lora_unet_double_blocks_{i}_img_attn_proj",
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f"transformer.transformer_blocks.{i}.attn.to_out.0"
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)
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LoRAConverter._convert_to_diffusers_cat(
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source,
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target,
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f"lora_unet_double_blocks_{i}_img_attn_qkv",
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[
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f"transformer.transformer_blocks.{i}.attn.to_q",
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f"transformer.transformer_blocks.{i}.attn.to_k",
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f"transformer.transformer_blocks.{i}.attn.to_v",
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],
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)
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LoRAConverter._convert_to_diffusers(
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source,
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target,
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f"lora_unet_double_blocks_{i}_img_mlp_0",
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f"transformer.transformer_blocks.{i}.ff.net.0.proj"
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)
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LoRAConverter._convert_to_diffusers(
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source,
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target,
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f"lora_unet_double_blocks_{i}_img_mlp_2",
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f"transformer.transformer_blocks.{i}.ff.net.2"
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)
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LoRAConverter._convert_to_diffusers(
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source,
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target,
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f"lora_unet_double_blocks_{i}_img_mod_lin",
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f"transformer.transformer_blocks.{i}.norm1.linear"
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)
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LoRAConverter._convert_to_diffusers(
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source,
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target,
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f"lora_unet_double_blocks_{i}_txt_attn_proj",
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f"transformer.transformer_blocks.{i}.attn.to_add_out"
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)
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LoRAConverter._convert_to_diffusers_cat(
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source,
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target,
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f"lora_unet_double_blocks_{i}_txt_attn_qkv",
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[
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f"transformer.transformer_blocks.{i}.attn.add_q_proj",
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f"transformer.transformer_blocks.{i}.attn.add_k_proj",
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f"transformer.transformer_blocks.{i}.attn.add_v_proj",
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],
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)
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LoRAConverter._convert_to_diffusers(
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source,
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target,
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f"lora_unet_double_blocks_{i}_txt_mlp_0",
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f"transformer.transformer_blocks.{i}.ff_context.net.0.proj"
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)
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LoRAConverter._convert_to_diffusers(
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source,
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target,
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f"lora_unet_double_blocks_{i}_txt_mlp_2",
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f"transformer.transformer_blocks.{i}.ff_context.net.2"
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)
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LoRAConverter._convert_to_diffusers(
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source,
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target,
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f"lora_unet_double_blocks_{i}_txt_mod_lin",
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f"transformer.transformer_blocks.{i}.norm1_context.linear"
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)
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for i in range(38):
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LoRAConverter._convert_to_diffusers_cat(
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source,
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target,
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f"lora_unet_single_blocks_{i}_linear1",
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[
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f"transformer.single_transformer_blocks.{i}.attn.to_q",
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f"transformer.single_transformer_blocks.{i}.attn.to_k",
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f"transformer.single_transformer_blocks.{i}.attn.to_v",
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f"transformer.single_transformer_blocks.{i}.proj_mlp",
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],
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dims=[3072, 3072, 3072, 12288],
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)
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LoRAConverter._convert_to_diffusers(
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source,
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target,
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f"lora_unet_single_blocks_{i}_linear2",
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f"transformer.single_transformer_blocks.{i}.proj_out"
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)
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LoRAConverter._convert_to_diffusers(
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source,
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target, f"lora_unet_single_blocks_{i}_modulation_lin",
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f"transformer.single_transformer_blocks.{i}.norm.linear"
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)
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if len(source) > 0:
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logger.warning(f"Unsupported keys for diffusers: {source.keys()}")
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return target
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@staticmethod
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def _convert_to_diffusers(
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source: dict,
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target: dict,
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source_key: str,
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target_key: str
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):
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if source_key + ".lora_down.weight" not in source:
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return
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down_weight = source.pop(source_key + ".lora_down.weight")
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# scale weight by alpha and dim
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rank = down_weight.shape[0]
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alpha = source.pop(source_key + ".alpha").item() # alpha is scalar
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scale = alpha / rank # LoRA is scaled by 'alpha / rank' in forward pass, so we need to scale it back here
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# calculate scale_down and scale_up to keep the same value. if scale is 4, scale_down is 2 and scale_up is 2
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scale_down = scale
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scale_up = 1.0
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while scale_down * 2 < scale_up:
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scale_down *= 2
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scale_up /= 2
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target[target_key + ".lora_A.weight"] = down_weight * scale_down
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target[target_key + ".lora_B.weight"] = source.pop(source_key + ".lora_up.weight") * scale_up
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@staticmethod
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def _convert_to_diffusers_cat(
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source: dict,
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target: dict,
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source_key: str,
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target_keys: list[str],
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dims=None
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):
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if source_key + ".lora_down.weight" not in source:
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return
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down_weight = source.pop(source_key + ".lora_down.weight")
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up_weight = source.pop(source_key + ".lora_up.weight")
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source_lora_rank = down_weight.shape[0]
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# scale weight by alpha and dim
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alpha = source.pop(source_key + ".alpha")
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scale = alpha / source_lora_rank
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# calculate scale_down and scale_up
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scale_down = scale
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scale_up = 1.0
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while scale_down * 2 < scale_up:
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scale_down *= 2
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scale_up /= 2
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down_weight = down_weight * scale_down
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up_weight = up_weight * scale_up
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# calculate dims if not provided
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num_splits = len(target_keys)
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if dims is None:
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dims = [up_weight.shape[0] // num_splits] * num_splits
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else:
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assert sum(dims) == up_weight.shape[0]
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# check up-weight is sparse or not
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is_sparse = False
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if source_lora_rank % num_splits == 0:
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diffusers_rank = source_lora_rank // num_splits
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is_sparse = True
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i = 0
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for j in range(len(dims)):
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for k in range(len(dims)):
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if j == k:
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continue
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is_sparse = is_sparse and torch.all(
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up_weight[i: i + dims[j], k * diffusers_rank: (k + 1) * diffusers_rank] == 0)
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i += dims[j]
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if is_sparse:
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logger.info(f"weight is sparse: {source_key}")
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# make diffusers weight
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diffusers_down_keys = [k + ".lora_A.weight" for k in target_keys]
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diffusers_up_keys = [k + ".lora_B.weight" for k in target_keys]
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if not is_sparse:
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# down_weight is copied to each split
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target.update({k: down_weight for k in diffusers_down_keys})
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# up_weight is split to each split
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target.update({k: v for k, v in zip(diffusers_up_keys, torch.split(up_weight, dims, dim=0))})
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else:
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# down_weight is chunked to each split
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target.update({k: v for k, v in zip(diffusers_down_keys, torch.chunk(down_weight, num_splits, dim=0))})
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# up_weight is sparse: only non-zero values are copied to each split
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i = 0
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for j in range(len(dims)):
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target[diffusers_up_keys[j]] = up_weight[i: i + dims[j], j * diffusers_rank: (j + 1) * diffusers_rank].contiguous()
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i += dims[j]
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@staticmethod
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def _convert_to_mlx(torch_dict: dict):
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mlx_dict = {}
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for key, value in torch_dict.items():
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if isinstance(value, torch.Tensor):
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mlx_dict[key] = mx.array(value.detach().cpu())
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else:
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mlx_dict[key] = value
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return mlx_dict
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@ -4,6 +4,7 @@ import mlx.core as mx
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from huggingface_hub import snapshot_download
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from mlx.utils import tree_unflatten
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from mflux.weights.lora_converter import LoRAConverter
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from mflux.weights.lora_util import LoraUtil
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from mflux.weights.weight_util import WeightUtil
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@ -65,7 +66,7 @@ class WeightHandler:
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if lora_path:
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if 'transformer' not in weights:
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raise Exception("The key `transformer` is missing in the LoRA safetensors file. Please ensure that the file is correctly formatted and contains the expected keys.")
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weights = LoRAConverter.load_weights(lora_path)
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weights = weights["transformer"]
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# Quantized weights (i.e. ones exported from this project) don't need any post-processing.
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