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export MODEL_PATH='mistralai/Mistral-7B-v0.1' | |
export SAVE_PATH='path/to/save' | |
export MASTER_ADDR="localhost" | |
export MASTER_PORT="1231" | |
export GLOO_SOCKET_IFNAME="lo" | |
export NCCL_SOCKET_IFNAME="lo" | |
export WANDB_DISABLED=true | |
export HF_TOKEN="token of your huggingface" | |
CUDA_VISIBLE_DEVICES=0,1,2,3,4,5,6,7 python3 -m torch.distributed.launch --master_addr ${MASTER_ADDR} --master_port ${MASTER_PORT} --nproc_per_node=8 --use_env train_math.py \ | |
--model_name_or_path $MODEL_PATH \ | |
--data_path MetaMathQA-395K.json \ | |
--data_length 10000000 \ | |
--bf16 True \ | |
--output_dir $SAVE_PATH \ | |
--num_train_epochs 3 \ | |
--per_device_train_batch_size 2 \ | |
--per_device_eval_batch_size 2 \ | |
--gradient_accumulation_steps 8 \ | |
--evaluation_strategy "no" \ | |
--save_strategy "steps" \ | |
--save_steps 100000 \ | |
--save_total_limit 0 \ | |
--learning_rate 5e-6 \ | |
--weight_decay 0. \ | |
--warmup_ratio 0.03 \ | |
--lr_scheduler_type "cosine" \ | |
--logging_steps 1 \ | |
--fsdp "full_shard auto_wrap" \ | |
--fsdp_transformer_layer_cls_to_wrap 'MistralDecoderLayer' \ | |
--tf32 True | |
python eval_gsm8k.py --model $SAVE_PATH --data_path ./data/test/GSM8K_test.jsonl | |
python eval_math.py --model $SAVE_PATH --data_path ./data/test/MATH_test.jsonl | |