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Align.sh
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#!/bin/bash
export CUDA_LAUNCH_BLOCKING=1
export WANDB_API_KEY=""
experiment_name=Align
log_folder="./logs/${experiment_name}"
mkdir -p $log_folder
log_name=$(date +"%m-%d_%H-%M").log
deepspeed llava/train/train_mem.py \
--model_name_or_path ./models/Jambav0.1-SFT \
--deepspeed ./scripts/zero3.json \
--version jamba \
--data_path ./data/Align/ImageAlign_modified.json \
--vision_tower ./models/clip_vit_large_patch14_336 \
--mm_projector_type mlp2x_gelu \
--resamplePooling 1d \
--tune_mm_mlp_adapter True \
--mm_vision_select_layer -2 \
--mm_use_im_start_end False \
--mm_use_im_patch_token False \
--per_device_train_batch_size 32 \
--per_device_eval_batch_size 1 \
--gradient_accumulation_steps 1 \
--bf16 True \
--output_dir ./ckpts/${experiment_name} \
--num_train_epochs 1 \
--evaluation_strategy "no" \
--save_strategy "steps" \
--save_steps 1000 \
--save_total_limit 1 \
--learning_rate 1e-4 \
--weight_decay 0. \
--warmup_ratio 0.03 \
--lr_scheduler_type "cosine" \
--logging_steps 1 \
--tf32 True \
--model_max_length 2048 \
--gradient_checkpointing True \
--dataloader_num_workers 8 \
--lazy_preprocess True \
--report_to wandb > ${log_folder}/${log_name} 2>&1 &