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--- |
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license: apache-2.0 |
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datasets: |
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- Vi-VLM/Vista |
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language: |
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- vi |
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--- |
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- Merged LoRA |
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- Training script |
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```bash |
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#!/bin/bash |
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PRETRAIN_CKPT_PATH=checkpoints/llava-qwen1.5-0.5b-pretrain-vista_description-3ep |
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BASE_MODEL=Qwen/Qwen1.5-0.5B |
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ROOT_DATA=data/llm_data |
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WANDB_PROJECT=chart-vision-llm CUDA_VISIBLE_DEVICES=0,1,2,3,4 deepspeed moellava/train/train_mem.py \ |
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--lora_enable True --lora_r 128 --lora_alpha 256 --mm_projector_lr 0.00000125 \ |
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--deepspeed ./scripts/zero2.json \ |
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--model_name_or_path $BASE_MODEL \ |
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--version qwen \ |
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--data_path $ROOT_DATA/json_files/vista_llava.json \ |
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--image_folder ${ROOT_DATA}/coco2017/train2017 \ |
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--image_tower google/siglip-base-patch16-256-multilingual \ |
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--image_projector_type mlp2x_gelu \ |
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--pretrain_mm_mlp_adapter $PRETRAIN_CKPT_PATH/mm_projector.bin \ |
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--tune_mm_mlp_adapter True \ |
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--mm_vision_select_layer -2 \ |
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--mm_use_im_start_end False \ |
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--mm_use_im_patch_token False \ |
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--image_aspect_ratio pad \ |
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--group_by_modality_length True \ |
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--bf16 True \ |
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--output_dir ./checkpoints/ft-llava-qwen1.5-0.5b-vista_llava-lora-2ep \ |
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--num_train_epochs 2 \ |
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--per_device_train_batch_size 8 \ |
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--per_device_eval_batch_size 2 \ |
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--gradient_accumulation_steps 2 \ |
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--evaluation_strategy "no" \ |
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--save_strategy "steps" \ |
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--save_steps 5000 \ |
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--save_total_limit 1 \ |
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--learning_rate 2e-5 \ |
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--weight_decay 0. \ |
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--warmup_ratio 0.03 \ |
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--lr_scheduler_type "cosine" \ |
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--logging_steps 10 \ |
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--tf32 True \ |
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--model_max_length 2048 \ |
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--gradient_checkpointing True \ |
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--dataloader_num_workers 4 \ |
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--lazy_preprocess True \ |
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--report_to wandb \ |
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--push_to_hub True \ |
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--cache_dir cache_dir \ |
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--run_name ft-llava-qwen1.5-0.5b-vista_llava-lora-2ep |
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``` |