Camembert Base
CamemBERT is an advanced French language model based on RoBERTa, offering 6 different versions suitable for various French natural language processing tasks.
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Release Time : 3/2/2022
Model Overview
CamemBERT is a French language model based on the RoBERTa architecture, specifically optimized for French text, and can be used for various natural language processing tasks such as text classification and named entity recognition.
Model Features
Multiple Version Options
Offers 6 different versions with varying parameter counts and pretraining data volumes to meet diverse needs.
Efficient Pretraining
Based on the RoBERTa architecture, pretrained on large-scale French text data with excellent performance.
Ease of Use
Can be easily loaded and used via the Hugging Face Transformers library.
Model Capabilities
Text infilling
Contextual embedding extraction
French text understanding
Natural language processing
Use Cases
Text Processing
Masked Infilling
Predict and fill masked words in sentences
Accurately predicts masked words in French text, such as filling 'Le camembert est <mask> :)' with 'Le camembert est délicieux :)'
Feature Extraction
Contextual Embeddings
Extract context-dependent feature representations of French text
Obtains high-quality vector representations of words and sentences, suitable for downstream tasks
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