Update log.txt
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log.txt
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Writing logs to /p/qdata/jm8wx/research/text_attacks/textattack/outputs/training/bert-base-uncased-yelp_polarity-2020-06-30-16:01/log.txt.
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Loading [94mnlp[0m dataset [94myelp_polarity[0m, split [94mtrain[0m.
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Loading [94mnlp[0m dataset [94myelp_polarity[0m, split [94mtest[0m.
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Loaded dataset. Found: 2 labels: ([0, 1])
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Loading transformers AutoModelForSequenceClassification: bert-base-uncased
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Tokenizing training data. (len: 560000)
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Tokenizing eval data (len: 38000)
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Loaded data and tokenized in 1064.7807202339172s
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Training model across 1 GPUs
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***** Running training *****
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Num examples = 560000
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Batch size = 8
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Max sequence length = 512
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Num steps = 350000
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Num epochs = 5
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Learning rate = 5e-05
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Eval accuracy: 50.0%
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Best acc found. Saved model to /p/qdata/jm8wx/research/text_attacks/textattack/outputs/training/bert-base-uncased-yelp_polarity-2020-06-30-16:01/.
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Eval accuracy: 50.00526315789474%
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Best acc found. Saved model to /p/qdata/jm8wx/research/text_attacks/textattack/outputs/training/bert-base-uncased-yelp_polarity-2020-06-30-16:01/.
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Eval accuracy: 50.0%
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Eval accuracy: 50.0%
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Eval accuracy: 50.0%
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Saved tokenizer <textattack.models.tokenizers.auto_tokenizer.AutoTokenizer object at 0x7f6bcb56cd00> to /p/qdata/jm8wx/research/text_attacks/textattack/outputs/training/bert-base-uncased-yelp_polarity-2020-06-30-16:01/.
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Wrote README to /p/qdata/jm8wx/research/text_attacks/textattack/outputs/training/bert-base-uncased-yelp_polarity-2020-06-30-16:01/README.md.
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Wrote training args to /p/qdata/jm8wx/research/text_attacks/textattack/outputs/training/bert-base-uncased-yelp_polarity-2020-06-30-16:01/train_args.json.
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