Save mflux versions in weight metadata
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@ -5,6 +5,8 @@ from mlx import nn
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from mlx.utils import tree_flatten
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from mlx.utils import tree_flatten
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from transformers import CLIPTokenizer, T5Tokenizer
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from transformers import CLIPTokenizer, T5Tokenizer
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from mflux.post_processing.generated_image import GeneratedImage
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class ModelSaver:
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class ModelSaver:
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@staticmethod
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@staticmethod
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@ -34,7 +36,10 @@ class ModelSaver:
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mx.save_safetensors(
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mx.save_safetensors(
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str(path / f"{i}.safetensors"),
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str(path / f"{i}.safetensors"),
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weight,
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weight,
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{"quantization_level": str(bits)},
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{
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"quantization_level": str(bits),
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"mflux_version": GeneratedImage.get_version(),
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},
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)
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)
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@staticmethod
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@staticmethod
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@ -15,6 +15,7 @@ class MetaData:
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scale: float | None = None
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scale: float | None = None
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is_lora: bool = False
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is_lora: bool = False
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is_mflux: bool = False
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is_mflux: bool = False
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mflux_version: str | None = None
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class WeightHandler:
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class WeightHandler:
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@ -40,10 +41,11 @@ class WeightHandler:
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# Load the weights from disk, huggingface cache, or download from huggingface
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# Load the weights from disk, huggingface cache, or download from huggingface
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root_path = Path(local_path) if local_path else WeightHandler._download_or_get_cached_weights(repo_id)
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root_path = Path(local_path) if local_path else WeightHandler._download_or_get_cached_weights(repo_id)
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clip_encoder, _ = WeightHandler._load_clip_encoder(root_path=root_path)
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clip_encoder, _, _ = WeightHandler._load_clip_encoder(root_path=root_path)
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t5_encoder, _ = WeightHandler._load_t5_encoder(root_path=root_path)
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t5_encoder, _, _ = WeightHandler._load_t5_encoder(root_path=root_path)
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vae, _ = WeightHandler._load_vae(root_path=root_path)
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vae, _, _ = WeightHandler._load_vae(root_path=root_path)
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transformer, quantization_level, _ = WeightHandler.load_transformer(root_path=root_path)
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transformer, quantization_level, mflux_version = WeightHandler.load_transformer(root_path=root_path)
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return WeightHandler(
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return WeightHandler(
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clip_encoder=clip_encoder,
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clip_encoder=clip_encoder,
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t5_encoder=t5_encoder,
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t5_encoder=t5_encoder,
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@ -53,7 +55,7 @@ class WeightHandler:
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quantization_level=quantization_level,
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quantization_level=quantization_level,
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scale=None,
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scale=None,
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is_lora=False,
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is_lora=False,
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is_mflux=False,
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mflux_version=mflux_version,
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),
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),
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)
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)
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@ -64,17 +66,17 @@ class WeightHandler:
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return len(self.transformer["single_transformer_blocks"])
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return len(self.transformer["single_transformer_blocks"])
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@staticmethod
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@staticmethod
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def _load_clip_encoder(root_path: Path) -> (dict, int):
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def _load_clip_encoder(root_path: Path) -> (dict, int, str | None):
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weights, quantization_level, _ = WeightHandler._get_weights("text_encoder", root_path)
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weights, quantization_level, mflux_version = WeightHandler._get_weights("text_encoder", root_path)
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return weights, quantization_level
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return weights, quantization_level, mflux_version
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@staticmethod
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@staticmethod
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def _load_t5_encoder(root_path: Path) -> (dict, int):
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def _load_t5_encoder(root_path: Path) -> (dict, int, str | None):
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weights, quantization_level, _ = WeightHandler._get_weights("text_encoder_2", root_path)
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weights, quantization_level, mflux_version = WeightHandler._get_weights("text_encoder_2", root_path)
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# Quantized weights (i.e. ones exported from this project) don't need any post-processing.
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# Quantized weights (i.e. ones exported from this project) don't need any post-processing.
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if quantization_level is not None:
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if quantization_level is not None:
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return weights, quantization_level
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return weights, quantization_level, mflux_version
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# Reshape and process the huggingface weights
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# Reshape and process the huggingface weights
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weights["final_layer_norm"] = weights["encoder"]["final_layer_norm"]
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weights["final_layer_norm"] = weights["encoder"]["final_layer_norm"]
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@ -93,7 +95,7 @@ class WeightHandler:
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block["attention"]["SelfAttention"]["relative_attention_bias"] = relative_attention_bias
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block["attention"]["SelfAttention"]["relative_attention_bias"] = relative_attention_bias
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weights.pop("encoder")
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weights.pop("encoder")
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return weights, quantization_level
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return weights, quantization_level, mflux_version
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@staticmethod
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@staticmethod
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def load_transformer(root_path: Path | None = None, lora_path: str | None = None) -> (dict, int, str | None):
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def load_transformer(root_path: Path | None = None, lora_path: str | None = None) -> (dict, int, str | None):
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@ -124,12 +126,12 @@ class WeightHandler:
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return weights, quantization_level, mflux_version
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return weights, quantization_level, mflux_version
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@staticmethod
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@staticmethod
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def _load_vae(root_path: Path) -> (dict, int):
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def _load_vae(root_path: Path) -> (dict, int, str | None):
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weights, quantization_level, _ = WeightHandler._get_weights("vae", root_path)
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weights, quantization_level, mflux_version = WeightHandler._get_weights("vae", root_path)
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# Quantized weights (i.e. ones exported from this project) don't need any post-processing.
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# Quantized weights (i.e. ones exported from this project) don't need any post-processing.
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if quantization_level is not None:
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if quantization_level is not None:
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return weights, quantization_level
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return weights, quantization_level, mflux_version
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# Reshape and process the huggingface weights
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# Reshape and process the huggingface weights
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weights["decoder"]["conv_in"] = {"conv2d": weights["decoder"]["conv_in"]}
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weights["decoder"]["conv_in"] = {"conv2d": weights["decoder"]["conv_in"]}
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@ -138,7 +140,7 @@ class WeightHandler:
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weights["encoder"]["conv_in"] = {"conv2d": weights["encoder"]["conv_in"]}
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weights["encoder"]["conv_in"] = {"conv2d": weights["encoder"]["conv_in"]}
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weights["encoder"]["conv_out"] = {"conv2d": weights["encoder"]["conv_out"]}
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weights["encoder"]["conv_out"] = {"conv2d": weights["encoder"]["conv_out"]}
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weights["encoder"]["conv_norm_out"] = {"norm": weights["encoder"]["conv_norm_out"]}
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weights["encoder"]["conv_norm_out"] = {"norm": weights["encoder"]["conv_norm_out"]}
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return weights, quantization_level
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return weights, quantization_level, mflux_version
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@staticmethod
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@staticmethod
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def _get_weights(
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def _get_weights(
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@ -156,6 +158,7 @@ class WeightHandler:
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weight = list(data[0].items())
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weight = list(data[0].items())
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if len(data) > 1:
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if len(data) > 1:
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quantization_level = data[1].get("quantization_level")
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quantization_level = data[1].get("quantization_level")
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mflux_version = data[1].get("mflux_version")
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weights.extend(weight)
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weights.extend(weight)
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if lora_path and root_path is None:
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if lora_path and root_path is None:
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@ -1,9 +1,12 @@
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import os
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import os
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import shutil
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import shutil
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from pathlib import Path
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import numpy as np
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import numpy as np
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from mflux import Config, Flux1, ModelConfig
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from mflux import Config, Flux1, ModelConfig
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from mflux.post_processing.generated_image import GeneratedImage
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from mflux.weights.weight_handler import WeightHandler
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PATH = "tests/4bit/"
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PATH = "tests/4bit/"
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@ -31,6 +34,11 @@ class TestModelSaving:
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fluxA.save_model(PATH)
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fluxA.save_model(PATH)
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del fluxA
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del fluxA
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# Verify that the mflux version is correctly saved in the model's metadata
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_, quantization_level, mflux_version = WeightHandler._load_vae(root_path=Path(PATH))
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assert mflux_version == GeneratedImage.get_version(), "mflux version not correctly saved in metadata" # fmt: off
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assert quantization_level == "4", "quantization level not correctly saved in metadata" # fmt: off
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# when loading the quantized model (also without specifying bits)
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# when loading the quantized model (also without specifying bits)
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fluxB = Flux1(
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fluxB = Flux1(
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model_config=ModelConfig.dev(),
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model_config=ModelConfig.dev(),
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