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#!/usr/bin/env bash |
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python -m torch.distributed.launch \ |
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--nproc_per_node 8 run_speech_recognition_seq2seq.py \ |
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--dataset_name="librispeech_asr" \ |
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--model_name_or_path="./" \ |
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--dataset_config_name="clean" \ |
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--train_split_name="train.100" \ |
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--eval_split_name="validation" \ |
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--output_dir="./" \ |
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--preprocessing_num_workers="16" \ |
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--length_column_name="input_length" \ |
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--overwrite_output_dir \ |
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--num_train_epochs="30" \ |
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--per_device_train_batch_size="4" \ |
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--per_device_eval_batch_size="4" \ |
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--gradient_accumulation_steps="8" \ |
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--generation_max_length="40" \ |
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--generation_num_beams="1" \ |
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--learning_rate="3e-4" \ |
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--warmup_steps="500" \ |
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--evaluation_strategy="steps" \ |
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--text_column_name="text" \ |
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--save_steps="500" \ |
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--eval_steps="500" \ |
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--logging_steps="1" \ |
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--save_total_limit="1" \ |
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--freeze_feature_extractor \ |
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--gradient_checkpointing \ |
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--fp16 \ |
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--group_by_length \ |
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--predict_with_generate \ |
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--do_eval --do_train |
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