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distilbert-base-uncased-finetuned-ner – AI Model by yThingSoHeavy | AlphaNeural AI
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yThingSoHeavy
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distilbert-base-uncased-finetuned-ner
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transformers
tf
tensorboard
distilbert
token-classification
generated_from_keras_callback
distilbert/distilbert-base-uncased
finetune
apache-2.0
autotrain_compatible
endpoints_compatible
us
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yThingSoHeavy/distilbert-base-uncased-finetuned-ner
This model is a fine-tuned version of
distilbert-base-uncased
on an unknown dataset. It achieves the following results on the evaluation set:
Train Loss: 0.0345
Validation Loss: 0.0602
Train Precision: 0.9246
Train Recall: 0.9322
Train F1: 0.9284
Train Accuracy: 0.9832
Epoch: 2
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:
optimizer: {'name': 'AdamWeightDecay', 'learning_rate': {'module': 'keras.optimizers.schedules', 'class_name': 'PolynomialDecay', 'config': {'initial_learning_rate': 2e-05, 'decay_steps': 2631, 'end_learning_rate': 0.0, 'power': 1.0, 'cycle': False, 'name': None}, 'registered_name': None}, 'decay': 0.0, 'beta_1': 0.9, 'beta_2': 0.999, 'epsilon': 1e-08, 'amsgrad': False, 'weight_decay_rate': 0.01}
training_precision: float32
Training results
Train Loss
Validation Loss
Train Precision
Train Recall
Train F1
Train Accuracy
Epoch
0.1979
0.0700
0.9081
0.9168
0.9124
0.9796
0
0.0549
0.0611
0.9178
0.9308
0.9242
0.9824
1
0.0345
0.0602
0.9246
0.9322
0.9284
0.9832
2
Framework versions
Transformers 4.35.0
TensorFlow 2.14.0
Datasets 2.14.6
Tokenizers 0.14.1