IE_M2_1000steps_1e7rate_03beta_SFT

This model is a fine-tuned version of tsavage68/IE_M2_1000steps_1e7rate_SFT on an unknown dataset. It achieves the following results on the evaluation set:

  • Loss: 0.3743
  • Rewards/chosen: -0.4432
  • Rewards/rejected: -6.7623
  • Rewards/accuracies: 0.4600
  • Rewards/margins: 6.3191
  • Logps/rejected: -63.5627
  • Logps/chosen: -43.6829
  • Logits/rejected: -2.8851
  • Logits/chosen: -2.8225

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-07
  • train_batch_size: 2
  • eval_batch_size: 1
  • seed: 42
  • gradient_accumulation_steps: 2
  • total_train_batch_size: 4
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: cosine
  • lr_scheduler_warmup_steps: 100
  • training_steps: 1000

Training results

Training Loss Epoch Step Validation Loss Rewards/chosen Rewards/rejected Rewards/accuracies Rewards/margins Logps/rejected Logps/chosen Logits/rejected Logits/chosen
0.4682 0.4 50 0.3782 -0.1103 -2.3818 0.4600 2.2716 -48.9613 -42.5731 -2.9040 -2.8424
0.3812 0.8 100 0.3743 -0.3057 -5.2338 0.4600 4.9281 -58.4679 -43.2247 -2.8913 -2.8290
0.3119 1.2 150 0.3743 -0.4620 -6.2918 0.4600 5.8298 -61.9944 -43.7454 -2.8899 -2.8276
0.3639 1.6 200 0.3743 -0.4045 -6.1963 0.4600 5.7918 -61.6762 -43.5540 -2.8874 -2.8248
0.4332 2.0 250 0.3743 -0.4216 -6.3719 0.4600 5.9503 -62.2614 -43.6108 -2.8860 -2.8234
0.3986 2.4 300 0.3743 -0.4257 -6.4310 0.4600 6.0053 -62.4585 -43.6244 -2.8858 -2.8233
0.3986 2.8 350 0.3743 -0.4206 -6.4901 0.4600 6.0695 -62.6555 -43.6075 -2.8857 -2.8232
0.4505 3.2 400 0.3743 -0.4331 -6.5613 0.4600 6.1281 -62.8927 -43.6493 -2.8859 -2.8233
0.4505 3.6 450 0.3743 -0.4385 -6.6329 0.4600 6.1945 -63.1316 -43.6671 -2.8854 -2.8229
0.4332 4.0 500 0.3743 -0.4451 -6.6895 0.4600 6.2444 -63.3203 -43.6893 -2.8853 -2.8227
0.3292 4.4 550 0.3743 -0.4424 -6.7191 0.4600 6.2766 -63.4188 -43.6803 -2.8853 -2.8227
0.3639 4.8 600 0.3743 -0.4424 -6.7393 0.4600 6.2969 -63.4861 -43.6801 -2.8854 -2.8228
0.4505 5.2 650 0.3743 -0.4464 -6.7495 0.4600 6.3031 -63.5201 -43.6934 -2.8852 -2.8225
0.4505 5.6 700 0.3743 -0.4436 -6.7510 0.4600 6.3074 -63.5251 -43.6842 -2.8853 -2.8227
0.3639 6.0 750 0.3743 -0.4452 -6.7582 0.4600 6.3130 -63.5491 -43.6895 -2.8852 -2.8225
0.2426 6.4 800 0.3743 -0.4492 -6.7644 0.4600 6.3152 -63.5699 -43.7027 -2.8854 -2.8227
0.5025 6.8 850 0.3743 -0.4443 -6.7593 0.4600 6.3150 -63.5528 -43.6864 -2.8850 -2.8224
0.3119 7.2 900 0.3743 -0.4434 -6.7628 0.4600 6.3194 -63.5646 -43.6836 -2.8853 -2.8226
0.3466 7.6 950 0.3743 -0.4431 -6.7625 0.4600 6.3194 -63.5635 -43.6825 -2.8851 -2.8225
0.3812 8.0 1000 0.3743 -0.4432 -6.7623 0.4600 6.3191 -63.5627 -43.6829 -2.8851 -2.8225

Framework versions

  • Transformers 4.44.2
  • Pytorch 2.0.0+cu117
  • Datasets 3.0.0
  • Tokenizers 0.19.1
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