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gena-lm-bigbird-base-t2t_ft_BioS2_1kbpHG19_DHSs_H3K27AC

This model is a fine-tuned version of AIRI-Institute/gena-lm-bigbird-base-t2t on the None dataset. It achieves the following results on the evaluation set:

  • Loss: 0.4979
  • F1 Score: 0.8766
  • Precision: 0.8781
  • Recall: 0.8750
  • Accuracy: 0.8683
  • Auc: 0.9406
  • Prc: 0.9418

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: 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: 20
  • mixed_precision_training: Native AMP

Training results

Training Loss Epoch Step Validation Loss F1 Score Precision Recall Accuracy Auc Prc
0.5349 0.0841 500 0.4552 0.8265 0.7778 0.8816 0.8022 0.8727 0.8639
0.4552 0.1682 1000 0.4734 0.8272 0.7263 0.9607 0.7856 0.8927 0.8877
0.4577 0.2523 1500 0.4191 0.8381 0.7512 0.9477 0.8044 0.9022 0.9005
0.4282 0.3364 2000 0.4104 0.8528 0.7777 0.9440 0.8259 0.9128 0.8970
0.4127 0.4205 2500 0.3636 0.8611 0.8367 0.8870 0.8471 0.9213 0.9216
0.4226 0.5045 3000 0.3621 0.8623 0.8096 0.9223 0.8426 0.9248 0.9255
0.4231 0.5886 3500 0.3553 0.8629 0.7931 0.9462 0.8394 0.9317 0.9329
0.3945 0.6727 4000 0.3843 0.8631 0.7856 0.9575 0.8377 0.9345 0.9341
0.3911 0.7568 4500 0.4173 0.8681 0.8571 0.8794 0.8572 0.9315 0.9330
0.4233 0.8409 5000 0.3419 0.8741 0.8249 0.9295 0.8569 0.9355 0.9376
0.3787 0.9250 5500 0.3880 0.8650 0.7891 0.9572 0.8404 0.9346 0.9357
0.3849 1.0091 6000 0.3629 0.8766 0.8512 0.9037 0.8641 0.9353 0.9359
0.3522 1.0932 6500 0.3683 0.8803 0.8558 0.9062 0.8683 0.9381 0.9381
0.3376 1.1773 7000 0.4292 0.8640 0.7824 0.9644 0.8377 0.9392 0.9373
0.365 1.2614 7500 0.4852 0.8667 0.7858 0.9663 0.8412 0.9403 0.9371
0.3569 1.3454 8000 0.5700 0.8720 0.8112 0.9427 0.8522 0.9352 0.9287
0.3822 1.4295 8500 0.3894 0.8817 0.8720 0.8917 0.8722 0.9406 0.9418
0.3391 1.5136 9000 0.4167 0.8696 0.8863 0.8536 0.8633 0.9413 0.9434
0.3591 1.5977 9500 0.3554 0.8853 0.8631 0.9087 0.8742 0.9432 0.9436
0.3699 1.6818 10000 0.4540 0.8812 0.8868 0.8757 0.8739 0.9440 0.9441
0.3777 1.7659 10500 0.4137 0.8849 0.8583 0.9131 0.8730 0.9421 0.9423
0.3602 1.8500 11000 0.3798 0.8736 0.8835 0.8640 0.8665 0.9414 0.9444
0.3583 1.9341 11500 0.4461 0.8840 0.8405 0.9323 0.8693 0.9438 0.9458
0.3573 2.0182 12000 0.4979 0.8766 0.8781 0.8750 0.8683 0.9406 0.9418

Framework versions

  • Transformers 4.42.3
  • Pytorch 2.3.0+cu121
  • Datasets 2.18.0
  • Tokenizers 0.19.0
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