almanach/camembertv2-base-ftb-ner is a roberta model for token classification. It is trained on the FTB-NER dataset for the task of Named Entity Recognition (NER). The model achieves an f1 score of 0.93548 on the FTB-NER dataset.
The model is part of the almanach/camembertv2-base family of model finetunes.
Model Details
Model Description
Developed by:
Wissam Antoun (Phd Student at Almanach, Inria-Paris)
Model type:
roberta
Language(s) (NLP):
French
License:
MIT
Finetuned from model [optional]:
almanach/camembertv2-base
The model can be used for token classification tasks in French for Named Entity Recognition (NER).
Bias, Risks, and Limitations
The model may exhibit biases based on the training data. The model may not generalize well to other datasets or tasks. The model may also have limitations in terms of the data it was trained on.
How to Get Started with the Model
Use the code below to get started with the model.
from transformers import AutoTokenizer, AutoModelForTokenClassification, pipeline
model = AutoModelForTokenClassification.from_pretrained("almanach/camembertv2-base-ftb-ner")
tokenizer = AutoTokenizer.from_pretrained("almanach/camembertv2-base-ftb-ner")
classifier = pipeline("token-classification", model=model, tokenizer=tokenizer)
classifier("Votre texte ici")
Training Details
Training Data
The model is trained on the FTB-NER dataset.
Dataset Name: FTB-NER
Dataset Size:
Train: 9881
Dev: 1235
Test: 1235
Training Procedure
Model trained with the run_ner.py script from the huggingface repository.
@misc{antoun2024camembert20smarterfrench,
title={CamemBERT 2.0: A Smarter French Language Model Aged to Perfection},
author={Wissam Antoun and Francis Kulumba and Rian Touchent and Éric de la Clergerie and Benoît Sagot and Djamé Seddah},
year={2024},
eprint={2411.08868},
archivePrefix={arXiv},
primaryClass={cs.CL},
url={https://arxiv.org/abs/2411.08868},
}
Runs of almanach camembertv2-base-ftb-ner on huggingface.co
16
Total runs
0
24-hour runs
0
3-day runs
2
7-day runs
-2
30-day runs
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