huggingface / huggingface/diffusers
deepspeed train flux1 dreambooth lora can not save model
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Description
### Describe the bug
when I run the script train_dreambooth_lora_flux.py. It raise ValueError: unexpected save model: . something bug in save_model_hook?
![Uploading image.png…]()
### Reproduction
accelerate launch train_dreambooth_lora_flux_custom.py \
--pretrained_model_name_or_path=$MODEL_NAME \
--instance_data_dir=$INSTANCE_DIR \
--output_dir=$OUTPUT_DIR \
--mixed_precision="bf16" \
--instance_prompt="bedroom, YF_CN style" \
--resolution=1024 \
--train_batch_size=1 \
--guidance_scale=1 \
--gradient_accumulation_steps=4 \
--optimizer="prodigy" \
--learning_rate=1. \
--report_to="tensorboard" \
--lr_scheduler="constant" \
--lr_warmup_steps=0 \
--num_train_epochs=30 \
--validation_prompt="bedroom, YF_CN style" \
--validation_epochs=80 \
--checkpointing_steps=500 \
--seed="0" \
--gradient_checkpointing \
--use_8bit_adam \
--rank=4
### Logs
_No response_
### System Info
torch==2.3.1
accelerate==0.34.2
deepspeed==0.15.1+8ac42ed7
diffusers==0.31.0.dev0
default_config.yaml as follow:
compute_environment: LOCAL_MACHINE
debug: true
deepspeed_config:
gradient_accumulation_steps: 1
gradient_clipping: 1.0
offload_optimizer_device: none
offload_param_device: none
zero3_init_flag: false
zero_stage: 2
distributed_type: DEEPSPEED
downcast_bf16: 'no'
enable_cpu_affinity: false
machine_rank: 0
main_training_function: main
mixed_precision: fp16
num_machines: 1
num_processes: 1
rdzv_backend: static
same_network: true
tpu_env: []
tpu_use_cluster: false
tpu_use_sudo: false
use_cpu: fals
### Who can help?
@sayakpaul
Guide de contribution
Ouvrir le guide de contribution
Piste de recherche
Start by reproducing the command with train_dreambooth_lora_flux.py and the listed Accelerate/DeepSpeed configuration, then inspect the save_model_hook path involved in checkpoint saving. Compare how the DeepSpeedEngine is handled during saving; done means the Flux DreamBooth LoRA training run saves the model without the unexpected save model ValueError.
Rédigé par le modèle d'indexation à partir du texte de l'issue.
Évaluation
- Stack technique
- python, pytorch
- Domaine
- machine-learning
- Type d'issue
- Bug
- Difficulté
- 4/5
- Temps estimé
- 3-5 jours
- Activité
- À l'abandon
- Clarté
- Plutôt claire
- Accessibilité débutants
- 35/100