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https://github.com/hiyouga/LLaMA-Factory.git
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[example] add deepspeed autotp config and example (#9602)
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32
examples/deepspeed/ds_z2_autotp_config.json
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examples/deepspeed/ds_z2_autotp_config.json
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{
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"_comment": "suooprted model list: https://www.deepspeed.ai/tutorials/automatic-tensor-parallelism/#supported-models",
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"train_batch_size": "auto",
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"train_micro_batch_size_per_gpu": "auto",
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"gradient_accumulation_steps": "auto",
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"gradient_clipping": "auto",
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"zero_allow_untested_optimizer": true,
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"fp16": {
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"enabled": "auto",
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"loss_scale": 0,
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"loss_scale_window": 1000,
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"initial_scale_power": 16,
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"hysteresis": 2,
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"min_loss_scale": 1
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},
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"bf16": {
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"enabled": "auto"
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},
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"zero_optimization": {
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"stage": 2,
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"allgather_partitions": true,
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"allgather_bucket_size": 5e8,
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"overlap_comm": false,
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"reduce_scatter": true,
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"reduce_bucket_size": 5e8,
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"contiguous_gradients": true,
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"round_robin_gradients": true
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},
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"tensor_parallel": {
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"autotp_size": 2
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}
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}
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examples/train_full/qwen3_full_sft_autotp.yaml
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examples/train_full/qwen3_full_sft_autotp.yaml
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### model
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model_name_or_path: Qwen/Qwen3-32B
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trust_remote_code: true
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use_v1_kernels: true
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### method
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stage: sft
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do_train: true
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finetuning_type: full
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deepspeed: examples/deepspeed/ds_z2_autotp_config.json
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### dataset
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dataset: identity,alpaca_en_demo
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template: qwen3
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cutoff_len: 2048
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max_samples: 1000
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overwrite_cache: true
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preprocessing_num_workers: 16
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dataloader_num_workers: 4
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### output
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output_dir: saves/qwen3-32b/full/sft_autotp
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logging_steps: 1
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save_steps: 500
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plot_loss: true
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overwrite_output_dir: true
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save_only_model: false
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report_to: none # choices: [none, wandb, tensorboard, swanlab, mlflow]
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### train
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per_device_train_batch_size: 4
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gradient_accumulation_steps: 1
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learning_rate: 1.0e-4
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num_train_epochs: 3.0
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lr_scheduler_type: cosine
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warmup_ratio: 0.1
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bf16: true
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ddp_timeout: 180000000
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resume_from_checkpoint: null
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### eval
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# eval_dataset: alpaca_en_demo
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# val_size: 0.1
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# per_device_eval_batch_size: 1
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# eval_strategy: steps
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# eval_steps: 500
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