qwen3_4_20250810_1830

This model is a fine-tuned version of Qwen/Qwen3-4B on the None dataset. It achieves the following results on the evaluation set:

  • Loss: 0.3527
  • Map@3: 0.9402

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: 0.0002
  • train_batch_size: 8
  • eval_batch_size: 8
  • seed: 42
  • gradient_accumulation_steps: 8
  • total_train_batch_size: 64
  • optimizer: Use OptimizerNames.ADAMW_TORCH with betas=(0.9,0.999) and epsilon=1e-08 and optimizer_args=No additional optimizer arguments
  • lr_scheduler_type: linear
  • num_epochs: 3

Training results

Training Loss Epoch Step Validation Loss Map@3
17.833 0.0598 20 1.5907 0.6585
10.8612 0.1196 40 1.0722 0.7894
7.8304 0.1794 60 0.9041 0.8111
6.5089 0.2392 80 0.7447 0.8618
5.8982 0.2990 100 0.8053 0.8353
5.731 0.3587 120 0.6625 0.8693
5.0727 0.4185 140 0.5880 0.8846
4.5931 0.4783 160 0.6262 0.8838
4.7836 0.5381 180 0.6134 0.8885
4.4168 0.5979 200 0.5579 0.8916
4.1757 0.6577 220 0.5146 0.8965
4.3021 0.7175 240 0.6313 0.8833
4.6016 0.7773 260 0.4597 0.9115
3.7059 0.8371 280 0.5034 0.9067
3.9725 0.8969 300 0.4700 0.9133
3.914 0.9567 320 0.4651 0.9122
3.7313 1.0149 340 0.4505 0.9136
2.9634 1.0747 360 0.4426 0.9149
2.6522 1.1345 380 0.4350 0.9170
3.2828 1.1943 400 0.4200 0.9143
2.4674 1.2541 420 0.4215 0.9216
2.7299 1.3139 440 0.4072 0.9242
2.8582 1.3737 460 0.3967 0.9253
2.5655 1.4335 480 0.4050 0.9231
2.5789 1.4933 500 0.3962 0.9259
2.6098 1.5531 520 0.3773 0.9266
2.432 1.6129 540 0.3689 0.9304
2.6076 1.6726 560 0.3542 0.9342
2.3517 1.7324 580 0.3527 0.9325
2.5449 1.7922 600 0.3853 0.9287
2.7974 1.8520 620 0.3393 0.9350
2.3339 1.9118 640 0.3370 0.9353
2.1641 1.9716 660 0.3473 0.9360
2.3347 2.0299 680 0.3355 0.9348
1.5164 2.0897 700 0.3569 0.9346
1.3422 2.1495 720 0.3643 0.9365
1.4261 2.2093 740 0.3514 0.9385
1.2539 2.2691 760 0.3639 0.9388
1.2392 2.3288 780 0.3515 0.9373
1.3577 2.3886 800 0.3409 0.9389
1.4255 2.4484 820 0.3588 0.9375
1.1825 2.5082 840 0.3485 0.9381
1.0949 2.5680 860 0.3546 0.9393
0.9391 2.6278 880 0.3649 0.9386
1.4165 2.6876 900 0.3568 0.9394
0.9286 2.7474 920 0.3540 0.9391
1.0405 2.8072 940 0.3531 0.9399
1.1154 2.8670 960 0.3526 0.9401
0.9436 2.9268 980 0.3532 0.9398
1.3439 2.9865 1000 0.3527 0.9402

Framework versions

  • PEFT 0.17.0
  • Transformers 4.55.0
  • Pytorch 2.6.0+cu124
  • Datasets 4.0.0
  • Tokenizers 0.21.4
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Evaluation results