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license: mit |
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datasets: |
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- wikipedia |
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- bookcorpus |
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language: |
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- en |
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metrics: |
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- glue |
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library_name: transformers |
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--- |
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This is our reproduction using the official HuggingFace `roberta` architecture with a medium size. On the architecture side, RoBERTa is exactly the same as BERT except for its larger vocabulary size. |
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According to Google's [BERT releases](https://huggingface.co/google/bert_uncased_L-8_H-512_A-8) and [BERT-Medium](https://huggingface.co/google/bert_uncased_L-8_H-512_A-8/blob/main/config.json), a medium sized model should have a config of Layer=8, Hidden=512, #AttnHeads=8, and IntermediateSize=2048. We follow this config to pre-train a RoBERTa-base model for reproduction. |
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We use the same datasets as BERT (English Wikipedia and Book Corpus) to pre-train for 30k steps with a batch size of 8,192. I also released the reproduction of this dataset [on HuggingFace](https://huggingface.co/datasets/JackBAI/bert_pretrain_datasets). |
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We utilized DeepSpeed ZeRO-2 for performance optimization. |
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Other training configuration: |
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| Parameter | Value | |
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|----------------------|-----------| |
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| WARMUP_STEPS | 1800 | |
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| LR_DECAY | linear | |
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| ADAM_EPS | 1e-6 | |
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| ADAM_BETA1 | 0.9 | |
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| ADAM_BETA2 | 0.98 | |
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| ADAM_WEIGHT_DECAY | 0.01 | |
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| PEAK_LR | 1e-3 | |
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We achieve very similar performance as the official BERT-Medium release on GLUE: |
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| Model | MRPC-F1 | STS-B-Pearson | SST-2-Acc | QQP-F1 | MNLI-m | MNLI-mm | QNLI-Acc | WNLI-Acc | RTE-Acc | |
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|----------------|---------|---------------|-----------|--------|--------|---------|----------|----------|---------| |
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| RoBERTa-medium (ours) | 83.6 | 82.7 | 89.7 | 89.0 | 79.7 | 80.1 | 89.3 | 31.0 | 57.4 | |
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| [BERT-medium](https://huggingface.co/google/bert_uncased_L-8_H-512_A-8) | 86.3 | 87.7 | 88.9 | 89.4 | 80.6 | 81.0 | 89.2 | 29.6 | 63.9 | |
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Evaluation Scores Curve (AVG of scores) during pretraining: |
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For both stats above we don't report CoLA scores as it's pretty unstable. The raw CoLA scores are: |
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| Step | 1500 | 3000 | 6000 | 9000 | 13500 | 18000 | 24000 | 30000 | |
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|----------|----------|----------|----------|----------|----------|----------|----------|----------| |
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CoLA | 1.7 | 13.5 | 29.2 | 31.4 | 31.1 | 24.1 | 29.0 | 20.0 | |
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