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DeepMount00/Italian_NER_XXL_v2
Italian_NER_XXL_v2 is a token classification model from DeepMount00. Use it when you need labels on individual words, such as names. The card lists the license as apache-2.0.
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From the Hugging Face model README
๐ก Found this resource helpful? Creating and maintaining open source AI models and datasets requires significant computational resources. If this work has been valuable to you, consider supporting my research to help me continue building tools that benefit the entire AI community. Every contribution directly funds more open source innovation! โ
Welcome to the second generation of our state-of-the-art Named Entity Recognition model for Italian text. Building on the success of our previous version, Italian_NER_XXL_v2 delivers significantly enhanced performance with an accuracy of 87.5% and F1 score of 89.2% - an improvement of over 8 percentage points from my previous model.
Italian_NER_XXL_v2 remains the only model in Italy capable of identifying a comprehensive range of 52 different entity categories, maintaining our unique position in the Italian NLP landscape. This unparalleled breadth of entity recognition makes our model the premier choice for privacy, legal, and financial applications.
Our model identifies an extensive range of entities across multiple domains:
from transformers import AutoTokenizer, AutoModelForTokenClassification
from transformers import pipeline
import torch
# Load model and tokenizer
tokenizer = AutoTokenizer.from_pretrained("DeepMount00/Italian_NER_XXL_v2")
model = AutoModelForTokenClassification.from_pretrained("DeepMount00/Italian_NER_XXL_v2")
# Create NER pipeline
nlp = pipeline("ner", model=model, tokenizer=tokenizer, aggregation_strategy="simple")
# Example text
example = """Il commendatore Gianluigi Alberico De Laurentis-Ponti, con residenza legale in Corso Imperatrice 67,
Torino, avente codice fiscale DLNGGL60B01L219P, รจ amministratore delegato della "De Laurentis Advanced Engineering
Group S.p.A.", che si trova in Piazza Affari 32, Milano (MI); con una partita IVA di 09876543210, la societร รจ stata
recentemente incaricata di sviluppare una nuova linea di componenti aerospaziali per il progetto internazionale
di esplorazione di Marte."""
# Run NER
ner_results = nlp(example)
# Process results
for entity in ner_results:
print(f"{entity['entity_group']}: {entity['word']} (confidence: {entity['score']:.4f})")
We're committed to continuous improvement of the model:
Your feedback is essential to improving this model. If you're interested in contributing, have suggestions, or need a customized NER solution, please contact:
Michele Montebovi
Email: [email protected]
We welcome collaboration from the Italian NLP community to further enhance this tool and expand its applications across industries.
If you use this model in your research or applications, please cite:
@misc{montebovi2025italiannerxxl,
author = {Montebovi, Michele},
title = {Italian\_NER\_XXL\_v2: A Comprehensive Named Entity Recognition Model for Italian},
year = {2025},
publisher = {HuggingFace},
howpublished = {\url{https://huggingface.co/DeepMount00/Italian_NER_XXL_v2}}
}