chefdiff

This model is a fine-tuned version of avsolatorio/GIST-large-Embedding-v0 on the None dataset. It achieves the following results on the evaluation set:

  • Loss: 0.2966
  • F1: 0.6367
  • Roc Auc: 0.7929
  • Accuracy: 0.0909

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: 5e-05
  • train_batch_size: 8
  • eval_batch_size: 8
  • seed: 42
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • num_epochs: 35

Training results

Training Loss Epoch Step Validation Loss F1 Roc Auc Accuracy
0.4056 1.0 50 0.3591 0.1786 0.5651 0.0182
0.3103 2.0 100 0.3197 0.3214 0.6256 0.0909
0.2522 3.0 150 0.2939 0.3551 0.6471 0.0727
0.2039 4.0 200 0.2741 0.4813 0.7092 0.1273
0.1632 5.0 250 0.2714 0.5493 0.7380 0.0909
0.1308 6.0 300 0.2532 0.4740 0.6994 0.1636
0.1056 7.0 350 0.2644 0.5641 0.7575 0.0909
0.0837 8.0 400 0.2541 0.5684 0.7579 0.1091
0.0679 9.0 450 0.2542 0.6112 0.7782 0.1273
0.0562 10.0 500 0.2587 0.6342 0.7932 0.1455
0.0476 11.0 550 0.2547 0.6399 0.7913 0.1455
0.0421 12.0 600 0.2683 0.6429 0.7998 0.1273
0.0369 13.0 650 0.2738 0.6146 0.7839 0.0909
0.0335 14.0 700 0.2678 0.6387 0.7920 0.0909
0.0298 15.0 750 0.2700 0.6123 0.7812 0.0909
0.0275 16.0 800 0.2737 0.6152 0.7804 0.0909
0.0255 17.0 850 0.2741 0.6339 0.7852 0.1091
0.024 18.0 900 0.2778 0.6564 0.8052 0.1091
0.0223 19.0 950 0.2815 0.6521 0.8019 0.1091
0.0213 20.0 1000 0.2778 0.6296 0.7902 0.0727
0.0201 21.0 1050 0.2861 0.6340 0.7900 0.0909
0.0192 22.0 1100 0.2819 0.6413 0.7949 0.0909
0.0185 23.0 1150 0.2913 0.6280 0.7888 0.0727
0.0178 24.0 1200 0.2874 0.6347 0.7938 0.0727
0.0172 25.0 1250 0.2890 0.6271 0.7879 0.0909
0.0166 26.0 1300 0.2900 0.6306 0.7901 0.0727
0.0161 27.0 1350 0.2944 0.6284 0.7896 0.0727
0.0158 28.0 1400 0.2931 0.6407 0.7954 0.0909
0.0154 29.0 1450 0.2942 0.6345 0.7937 0.0727
0.015 30.0 1500 0.2960 0.6413 0.7942 0.0909
0.0147 31.0 1550 0.2927 0.6477 0.7966 0.0909
0.0147 32.0 1600 0.2952 0.6396 0.7943 0.0909
0.0145 33.0 1650 0.2965 0.6314 0.7924 0.0727
0.0144 34.0 1700 0.2971 0.6367 0.7929 0.0909
0.0143 35.0 1750 0.2966 0.6367 0.7929 0.0909

Framework versions

  • Transformers 4.38.1
  • Pytorch 2.1.2
  • Datasets 2.1.0
  • Tokenizers 0.15.2
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