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roberta-base-sst-2-32-13-smoothed

This model is a fine-tuned version of roberta-base on an unknown dataset. It achieves the following results on the evaluation set:

  • Loss: 0.6023
  • Accuracy: 0.8906

Model description

More information needed

Intended uses & limitations

More information needed

Training and evaluation data

More information needed

Training procedure

Training hyperparameters

The following hyperparameters were used during training:

  • learning_rate: 1e-05
  • train_batch_size: 32
  • eval_batch_size: 32
  • seed: 42
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • lr_scheduler_warmup_steps: 50
  • num_epochs: 75
  • label_smoothing_factor: 0.45

Training results

Training Loss Epoch Step Validation Loss Accuracy
No log 1.0 2 0.6943 0.5
No log 2.0 4 0.6942 0.5
No log 3.0 6 0.6941 0.5
No log 4.0 8 0.6939 0.5
0.695 5.0 10 0.6937 0.5
0.695 6.0 12 0.6935 0.5
0.695 7.0 14 0.6933 0.5
0.695 8.0 16 0.6932 0.5
0.695 9.0 18 0.6930 0.5
0.6959 10.0 20 0.6928 0.5
0.6959 11.0 22 0.6927 0.5156
0.6959 12.0 24 0.6926 0.6094
0.6959 13.0 26 0.6925 0.5781
0.6959 14.0 28 0.6923 0.5625
0.6919 15.0 30 0.6922 0.5625
0.6919 16.0 32 0.6920 0.5625
0.6919 17.0 34 0.6917 0.6094
0.6919 18.0 36 0.6913 0.5938
0.6919 19.0 38 0.6908 0.6406
0.6896 20.0 40 0.6902 0.7188
0.6896 21.0 42 0.6892 0.7812
0.6896 22.0 44 0.6878 0.6719
0.6896 23.0 46 0.6855 0.7344
0.6896 24.0 48 0.6816 0.7344
0.6745 25.0 50 0.6737 0.7812
0.6745 26.0 52 0.6571 0.8438
0.6745 27.0 54 0.6290 0.8438
0.6745 28.0 56 0.6161 0.8438
0.6745 29.0 58 0.6202 0.8594
0.5833 30.0 60 0.6190 0.875
0.5833 31.0 62 0.6210 0.8594
0.5833 32.0 64 0.6147 0.8594
0.5833 33.0 66 0.6056 0.9062
0.5833 34.0 68 0.6082 0.9062
0.5433 35.0 70 0.6194 0.875
0.5433 36.0 72 0.6035 0.9062
0.5433 37.0 74 0.5986 0.8906
0.5433 38.0 76 0.5970 0.8906
0.5433 39.0 78 0.6038 0.8906
0.5402 40.0 80 0.6061 0.8906
0.5402 41.0 82 0.6018 0.8906
0.5402 42.0 84 0.6013 0.9062
0.5402 43.0 86 0.6018 0.8906
0.5402 44.0 88 0.6086 0.8594
0.5384 45.0 90 0.6100 0.8594
0.5384 46.0 92 0.6044 0.8906
0.5384 47.0 94 0.6022 0.8906
0.5384 48.0 96 0.6007 0.8906
0.5384 49.0 98 0.6003 0.8906
0.5368 50.0 100 0.6013 0.8906
0.5368 51.0 102 0.6012 0.8906
0.5368 52.0 104 0.6006 0.8906
0.5368 53.0 106 0.6005 0.8906
0.5368 54.0 108 0.6011 0.8906
0.537 55.0 110 0.6013 0.8906
0.537 56.0 112 0.6014 0.8906
0.537 57.0 114 0.6013 0.9062
0.537 58.0 116 0.6011 0.9062
0.537 59.0 118 0.6006 0.9062
0.5364 60.0 120 0.5999 0.9062
0.5364 61.0 122 0.5994 0.9062
0.5364 62.0 124 0.5991 0.9062
0.5364 63.0 126 0.5992 0.9062
0.5364 64.0 128 0.5996 0.9062
0.5362 65.0 130 0.6000 0.9062
0.5362 66.0 132 0.6004 0.9062
0.5362 67.0 134 0.6007 0.9062
0.5362 68.0 136 0.6015 0.9062
0.5362 69.0 138 0.6020 0.9062
0.5362 70.0 140 0.6020 0.9062
0.5362 71.0 142 0.6021 0.9062
0.5362 72.0 144 0.6023 0.8906
0.5362 73.0 146 0.6023 0.8906
0.5362 74.0 148 0.6023 0.8906
0.536 75.0 150 0.6023 0.8906

Framework versions

  • Transformers 4.32.0.dev0
  • Pytorch 2.0.1+cu118
  • Datasets 2.4.0
  • Tokenizers 0.13.3
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