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scenario-non-kd-scr-ner-full-xlmr_data-univner_half55

This model is a fine-tuned version of FacebookAI/xlm-roberta-base on the None dataset. It achieves the following results on the evaluation set:

  • Loss: 0.6057
  • Precision: 0.3164
  • Recall: 0.4190
  • F1: 0.3605
  • Accuracy: 0.9241

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: 3e-05
  • train_batch_size: 32
  • eval_batch_size: 32
  • seed: 55
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • num_epochs: 30

Training results

Training Loss Epoch Step Validation Loss Precision Recall F1 Accuracy
0.3684 0.5828 500 0.3201 0.3037 0.1297 0.1818 0.9250
0.2862 1.1655 1000 0.4033 0.1414 0.2340 0.1763 0.8857
0.2494 1.7483 1500 0.3582 0.1714 0.2489 0.2030 0.8971
0.2134 2.3310 2000 0.3811 0.1504 0.2642 0.1917 0.8876
0.1988 2.9138 2500 0.3442 0.1903 0.2610 0.2201 0.9067
0.1746 3.4965 3000 0.3546 0.1975 0.3053 0.2399 0.8995
0.1638 4.0793 3500 0.3659 0.2012 0.2925 0.2384 0.9024
0.1346 4.6620 4000 0.3343 0.2510 0.3200 0.2813 0.9165
0.1103 5.2448 4500 0.3847 0.2141 0.3679 0.2707 0.9001
0.0941 5.8275 5000 0.4124 0.2094 0.3936 0.2733 0.8914
0.0726 6.4103 5500 0.3687 0.2647 0.3927 0.3162 0.9141
0.0685 6.9930 6000 0.4199 0.2254 0.4031 0.2891 0.8982
0.0502 7.5758 6500 0.3970 0.2593 0.4017 0.3152 0.9123
0.0473 8.1585 7000 0.4260 0.2633 0.3972 0.3167 0.9144
0.0373 8.7413 7500 0.4215 0.2643 0.4113 0.3218 0.9123
0.0326 9.3240 8000 0.4395 0.2800 0.3894 0.3258 0.9180
0.0302 9.9068 8500 0.4467 0.2813 0.4014 0.3308 0.9166
0.025 10.4895 9000 0.4828 0.2676 0.4246 0.3283 0.9138
0.0225 11.0723 9500 0.4949 0.2713 0.4099 0.3265 0.9159
0.0184 11.6550 10000 0.4994 0.2641 0.4243 0.3255 0.9108
0.0172 12.2378 10500 0.4814 0.2957 0.4154 0.3455 0.9196
0.0148 12.8205 11000 0.5016 0.2707 0.4138 0.3273 0.9125
0.012 13.4033 11500 0.4947 0.2987 0.4108 0.3459 0.9213
0.0119 13.9860 12000 0.5388 0.2649 0.4363 0.3297 0.9101
0.0097 14.5688 12500 0.5064 0.3258 0.3862 0.3535 0.9279
0.009 15.1515 13000 0.5358 0.2916 0.4054 0.3392 0.9192
0.0083 15.7343 13500 0.5042 0.3260 0.3998 0.3592 0.9258
0.0075 16.3170 14000 0.5587 0.2790 0.4212 0.3356 0.9147
0.0072 16.8998 14500 0.5629 0.2705 0.4313 0.3325 0.9114
0.0052 17.4825 15000 0.5383 0.3214 0.4014 0.3570 0.9257
0.0057 18.0653 15500 0.5904 0.2784 0.4271 0.3371 0.9146
0.0049 18.6480 16000 0.6059 0.2663 0.4370 0.3310 0.9111
0.0046 19.2308 16500 0.5595 0.3023 0.4109 0.3484 0.9213
0.0041 19.8135 17000 0.5653 0.3122 0.4106 0.3547 0.9235
0.0033 20.3963 17500 0.5755 0.3079 0.4064 0.3504 0.9230
0.0035 20.9790 18000 0.5869 0.2899 0.4222 0.3438 0.9179
0.0029 21.5618 18500 0.5756 0.3057 0.4181 0.3532 0.9217
0.0025 22.1445 19000 0.5888 0.3189 0.4125 0.3597 0.9249
0.0024 22.7273 19500 0.5776 0.3043 0.4256 0.3549 0.9216
0.0023 23.3100 20000 0.5625 0.3258 0.4157 0.3653 0.9270
0.0019 23.8928 20500 0.5871 0.3203 0.4158 0.3619 0.9253
0.0018 24.4755 21000 0.5951 0.3152 0.4157 0.3585 0.9239
0.0017 25.0583 21500 0.5927 0.3169 0.4204 0.3614 0.9240
0.0015 25.6410 22000 0.5854 0.3164 0.4271 0.3635 0.9239
0.0015 26.2238 22500 0.5955 0.3077 0.4223 0.3560 0.9223
0.0011 26.8065 23000 0.5695 0.3575 0.4007 0.3779 0.9323
0.0011 27.3893 23500 0.5847 0.3338 0.4121 0.3688 0.9280
0.001 27.9720 24000 0.6023 0.3146 0.4154 0.3581 0.9245
0.0008 28.5548 24500 0.6122 0.3059 0.4232 0.3551 0.9217
0.0008 29.1375 25000 0.6104 0.3083 0.4186 0.3551 0.9226
0.0008 29.7203 25500 0.6057 0.3164 0.4190 0.3605 0.9241

Framework versions

  • Transformers 4.44.2
  • Pytorch 2.1.1+cu121
  • Datasets 2.14.5
  • Tokenizers 0.19.1
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