GenZ-mental-health-toxic-content-classification
This model is a fine-tuned version of vinai/phobert-base-v2 on an unknown dataset. It achieves the following results on the evaluation set:
- Loss: 0.7140
- Accuracy: 0.8845
- F1: 0.8107
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: 2e-05
- train_batch_size: 32
- eval_batch_size: 32
- seed: 42
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- num_epochs: 20
Training results
Training Loss | Epoch | Step | Validation Loss | Accuracy | F1 |
---|---|---|---|---|---|
No log | 0.2558 | 200 | 0.3398 | 0.8632 | 0.7654 |
No log | 0.5115 | 400 | 0.3330 | 0.8658 | 0.7819 |
No log | 0.7673 | 600 | 0.3304 | 0.8685 | 0.7871 |
0.3689 | 1.0230 | 800 | 0.3288 | 0.8822 | 0.7915 |
0.3689 | 1.2788 | 1000 | 0.2896 | 0.8875 | 0.8109 |
0.3689 | 1.5345 | 1200 | 0.2941 | 0.8835 | 0.8066 |
0.3689 | 1.7903 | 1400 | 0.3224 | 0.8869 | 0.7996 |
0.2734 | 2.0460 | 1600 | 0.3352 | 0.8860 | 0.8117 |
0.2734 | 2.3018 | 1800 | 0.3062 | 0.8873 | 0.8087 |
0.2734 | 2.5575 | 2000 | 0.3012 | 0.8907 | 0.8145 |
0.2734 | 2.8133 | 2200 | 0.3162 | 0.8916 | 0.8209 |
0.2175 | 3.0691 | 2400 | 0.3426 | 0.8824 | 0.8142 |
0.2175 | 3.3248 | 2600 | 0.3486 | 0.8933 | 0.8166 |
0.2175 | 3.5806 | 2800 | 0.3456 | 0.8894 | 0.8094 |
0.2175 | 3.8363 | 3000 | 0.3608 | 0.8858 | 0.7894 |
0.1847 | 4.0921 | 3200 | 0.3744 | 0.8916 | 0.8152 |
0.1847 | 4.3478 | 3400 | 0.3742 | 0.8924 | 0.8175 |
0.1847 | 4.6036 | 3600 | 0.3562 | 0.8879 | 0.8166 |
0.1847 | 4.8593 | 3800 | 0.3520 | 0.8954 | 0.8250 |
0.1611 | 5.1151 | 4000 | 0.3796 | 0.8965 | 0.8222 |
0.1611 | 5.3708 | 4200 | 0.3885 | 0.8958 | 0.8244 |
0.1611 | 5.6266 | 4400 | 0.4188 | 0.8965 | 0.8236 |
0.1611 | 5.8824 | 4600 | 0.3859 | 0.8956 | 0.8245 |
0.1404 | 6.1381 | 4800 | 0.4465 | 0.8897 | 0.8193 |
0.1404 | 6.3939 | 5000 | 0.4301 | 0.8839 | 0.8098 |
0.1404 | 6.6496 | 5200 | 0.5168 | 0.8907 | 0.8077 |
0.1404 | 6.9054 | 5400 | 0.4282 | 0.8881 | 0.8192 |
0.1266 | 7.1611 | 5600 | 0.5377 | 0.8752 | 0.8052 |
0.1266 | 7.4169 | 5800 | 0.4084 | 0.8896 | 0.8173 |
0.1266 | 7.6726 | 6000 | 0.4738 | 0.8794 | 0.8083 |
0.1266 | 7.9284 | 6200 | 0.4398 | 0.8911 | 0.8091 |
0.1139 | 8.1841 | 6400 | 0.4880 | 0.8871 | 0.8101 |
0.1139 | 8.4399 | 6600 | 0.4627 | 0.8854 | 0.8133 |
0.1139 | 8.6957 | 6800 | 0.5389 | 0.8920 | 0.8183 |
0.1139 | 8.9514 | 7000 | 0.4516 | 0.8913 | 0.8162 |
0.1002 | 9.2072 | 7200 | 0.5754 | 0.8743 | 0.8027 |
0.1002 | 9.4629 | 7400 | 0.4753 | 0.8860 | 0.8166 |
0.1002 | 9.7187 | 7600 | 0.5003 | 0.8881 | 0.8169 |
0.1002 | 9.9744 | 7800 | 0.5249 | 0.8854 | 0.8143 |
0.0921 | 10.2302 | 8000 | 0.5939 | 0.8873 | 0.8072 |
0.0921 | 10.4859 | 8200 | 0.5433 | 0.8884 | 0.8173 |
0.0921 | 10.7417 | 8400 | 0.5743 | 0.8941 | 0.8208 |
0.0845 | 10.9974 | 8600 | 0.5587 | 0.8899 | 0.8198 |
0.0845 | 11.2532 | 8800 | 0.5924 | 0.8946 | 0.8208 |
0.0845 | 11.5090 | 9000 | 0.6260 | 0.8718 | 0.8007 |
0.0845 | 11.7647 | 9200 | 0.5436 | 0.8905 | 0.8167 |
0.077 | 12.0205 | 9400 | 0.6050 | 0.8877 | 0.8112 |
0.077 | 12.2762 | 9600 | 0.6252 | 0.8777 | 0.8048 |
0.077 | 12.5320 | 9800 | 0.6506 | 0.8860 | 0.8125 |
0.077 | 12.7877 | 10000 | 0.5702 | 0.8881 | 0.8119 |
0.0713 | 13.0435 | 10200 | 0.6322 | 0.8867 | 0.8131 |
0.0713 | 13.2992 | 10400 | 0.6369 | 0.8847 | 0.8104 |
0.0713 | 13.5550 | 10600 | 0.6706 | 0.8781 | 0.8074 |
0.0713 | 13.8107 | 10800 | 0.6144 | 0.8837 | 0.8119 |
0.0662 | 14.0665 | 11000 | 0.6653 | 0.8854 | 0.8108 |
0.0662 | 14.3223 | 11200 | 0.6518 | 0.8865 | 0.8122 |
0.0662 | 14.5780 | 11400 | 0.6472 | 0.8892 | 0.8113 |
0.0662 | 14.8338 | 11600 | 0.6291 | 0.8875 | 0.8140 |
0.059 | 15.0895 | 11800 | 0.6548 | 0.8848 | 0.8123 |
0.059 | 15.3453 | 12000 | 0.7052 | 0.8865 | 0.8126 |
0.059 | 15.6010 | 12200 | 0.6693 | 0.8841 | 0.8089 |
0.059 | 15.8568 | 12400 | 0.6709 | 0.8777 | 0.8062 |
0.0567 | 16.1125 | 12600 | 0.6860 | 0.8856 | 0.8135 |
0.0567 | 16.3683 | 12800 | 0.6951 | 0.8858 | 0.8143 |
0.0567 | 16.6240 | 13000 | 0.7039 | 0.8911 | 0.8176 |
0.0567 | 16.8798 | 13200 | 0.6621 | 0.8852 | 0.8128 |
0.0558 | 17.1355 | 13400 | 0.7282 | 0.8852 | 0.8075 |
0.0558 | 17.3913 | 13600 | 0.7321 | 0.8865 | 0.8118 |
0.0558 | 17.6471 | 13800 | 0.7157 | 0.8816 | 0.8088 |
0.0558 | 17.9028 | 14000 | 0.6853 | 0.8833 | 0.8105 |
0.0518 | 18.1586 | 14200 | 0.7342 | 0.8884 | 0.8127 |
0.0518 | 18.4143 | 14400 | 0.7116 | 0.8845 | 0.8116 |
0.0518 | 18.6701 | 14600 | 0.6901 | 0.8884 | 0.8153 |
0.0518 | 18.9258 | 14800 | 0.6871 | 0.8847 | 0.8122 |
0.0493 | 19.1816 | 15000 | 0.6919 | 0.8843 | 0.8123 |
0.0493 | 19.4373 | 15200 | 0.7121 | 0.8850 | 0.8124 |
0.0493 | 19.6931 | 15400 | 0.7161 | 0.8848 | 0.8114 |
0.0493 | 19.9488 | 15600 | 0.7140 | 0.8845 | 0.8107 |
Framework versions
- Transformers 4.42.4
- Pytorch 2.1.2
- Datasets 2.20.0
- Tokenizers 0.19.1
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Base model
vinai/phobert-base-v2