French medical de-identification NER model

This model is a CamemBERT-based token classification checkpoint fine-tuned for named entity recognition on French medical text, with a focus on de-identification entities. NER labels: Nom, Prenom, Url, Ville, DateIdentifiante, SituationFamiliale, IdentiteSocialePatient, DateDesidentifiante, Pays, DateNaissancePatient, Adresse, NumeroTelephone, NationalitePatient

Results of training per epoch

Epoch Training Loss Validation Loss Precision Recall F1 Macro F1 Accuracy
1 3.259739 3.239809 0.008624 0.192094 0.016506 0.016309 0.234206
2 3.155496 3.177056 0.022145 0.451456 0.042219 0.043363 0.343179
3 3.062432 3.103942 0.026669 0.508322 0.050679 0.069548 0.403236
4 2.965864 3.031749 0.031932 0.550624 0.060364 0.107945 0.472002
5 2.878689 2.966769 0.038775 0.561720 0.072542 0.141406 0.559576
6 2.799171 2.908879 0.041481 0.555479 0.077197 0.138295 0.591547
7 2.737990 2.857519 0.048666 0.576976 0.089762 0.148555 0.644660
8 2.676395 2.815246 0.060018 0.594313 0.109026 0.164073 0.705796
9 2.638831 2.777210 0.059892 0.567268 0.108344 0.168802 0.714798
10 2.573915 2.748089 0.067711 0.587379 0.121425 0.175791 0.739021
11 2.542103 2.719197 0.073217 0.590153 0.130272 0.188839 0.756595
12 2.527237 2.700605 0.073934 0.596394 0.131559 0.189141 0.756458
13 2.507565 2.686029 0.076418 0.597781 0.135513 0.194222 0.764205
14 2.482355 2.677717 0.076399 0.591540 0.135322 0.188957 0.765304
15 2.477236 2.674951 0.076207 0.590153 0.134983 0.189207 0.764813
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