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mobilenet_v2_1.0_224-finetuned-papsmear

This model is a fine-tuned version of google/mobilenet_v2_1.0_224 on the imagefolder dataset. It achieves the following results on the evaluation set:

  • Loss: 0.4698
  • Accuracy: 0.8676

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
  • gradient_accumulation_steps: 4
  • total_train_batch_size: 32
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • lr_scheduler_warmup_ratio: 0.1
  • num_epochs: 60

Training results

Training Loss Epoch Step Validation Loss Accuracy
1.7932 0.9935 38 1.7607 0.25
1.6542 1.9869 76 1.5736 0.3971
1.4692 2.9804 114 1.4805 0.3676
1.2759 4.0 153 1.2177 0.5809
1.1521 4.9935 191 1.0727 0.6471
1.078 5.9869 229 0.9996 0.6176
1.0235 6.9804 267 0.8680 0.7059
0.9554 8.0 306 0.9273 0.6397
0.7437 8.9935 344 0.7389 0.7059
0.7876 9.9869 382 0.6774 0.7426
0.7698 10.9804 420 0.6569 0.7206
0.7597 12.0 459 0.6758 0.7574
0.6114 12.9935 497 0.8279 0.7132
0.6847 13.9869 535 0.7505 0.7132
0.5902 14.9804 573 0.7919 0.6691
0.629 16.0 612 0.6117 0.7868
0.5071 16.9935 650 0.6048 0.7353
0.5453 17.9869 688 0.8086 0.7279
0.5071 18.9804 726 0.7835 0.7059
0.5328 20.0 765 0.6139 0.75
0.5053 20.9935 803 0.5981 0.7868
0.4436 21.9869 841 0.5219 0.8015
0.5025 22.9804 879 0.4959 0.8088
0.4984 24.0 918 0.5701 0.7794
0.4655 24.9935 956 0.7179 0.7206
0.3848 25.9869 994 0.5075 0.8088
0.3824 26.9804 1032 0.6645 0.7426
0.4901 28.0 1071 0.7288 0.6985
0.397 28.9935 1109 0.7251 0.7279
0.3818 29.9869 1147 0.6250 0.7941
0.3412 30.9804 1185 0.7065 0.7279
0.3627 32.0 1224 0.6877 0.7426
0.3557 32.9935 1262 0.4245 0.8529
0.441 33.9869 1300 0.6974 0.75
0.3036 34.9804 1338 0.6458 0.7426
0.3213 36.0 1377 0.5579 0.7941
0.402 36.9935 1415 0.4578 0.8382
0.2897 37.9869 1453 0.5369 0.7868
0.348 38.9804 1491 0.6819 0.7941
0.3929 40.0 1530 0.5810 0.7868
0.3173 40.9935 1568 0.7875 0.7426
0.3499 41.9869 1606 0.5051 0.8015
0.3053 42.9804 1644 0.7510 0.7426
0.4109 44.0 1683 0.6529 0.75
0.3846 44.9935 1721 0.9615 0.7132
0.3222 45.9869 1759 0.8889 0.6691
0.3293 46.9804 1797 0.4698 0.8676
0.293 48.0 1836 0.5996 0.8015
0.2363 48.9935 1874 0.5007 0.8309
0.2811 49.9869 1912 0.6748 0.7941
0.2403 50.9804 1950 0.6595 0.7941
0.2553 52.0 1989 0.5987 0.7794
0.2959 52.9935 2027 0.5459 0.8235
0.3066 53.9869 2065 0.6198 0.7868
0.2981 54.9804 2103 0.4886 0.8309
0.2658 56.0 2142 0.6422 0.7794
0.2371 56.9935 2180 0.5000 0.8382
0.2331 57.9869 2218 0.8854 0.7132
0.2777 58.9804 2256 0.6190 0.8015
0.3047 59.6078 2280 0.6048 0.7647

Framework versions

  • Transformers 4.44.2
  • Pytorch 2.4.0
  • Datasets 2.21.0
  • Tokenizers 0.19.1
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Evaluation results