MARTINI_enrich_BERTopic_nationalistesfr
This is a BERTopic model. BERTopic is a flexible and modular topic modeling framework that allows for the generation of easily interpretable topics from large datasets.
Usage
To use this model, please install BERTopic:
pip install -U bertopic
You can use the model as follows:
from bertopic import BERTopic
topic_model = BERTopic.load("AIDA-UPM/MARTINI_enrich_BERTopic_nationalistesfr")
topic_model.get_topic_info()
Topic overview
- Number of topics: 7
- Number of training documents: 813
Click here for an overview of all topics.
Topic ID | Topic Keywords | Topic Frequency | Label |
---|---|---|---|
-1 | russie - campagne - dombass - zemmour - europeenne | 36 | -1_russie_campagne_dombass_zemmour |
0 | novembre - vendredi - perpignan - mouvement - edouard | 289 | 0_novembre_vendredi_perpignan_mouvement |
1 | sioniste - hollande - herve - avocats - jugement | 207 | 1_sioniste_hollande_herve_avocats |
2 | bastille - abdelkader - septembre - patriotisme - tricolore | 81 | 2_bastille_abdelkader_septembre_patriotisme |
3 | pandemie - publiques - vaccins - masques - perpignan | 75 | 3_pandemie_publiques_vaccins_masques |
4 | gauchistes - reptilienne - accueil - migratoire - raciale | 67 | 4_gauchistes_reptilienne_accueil_migratoire |
5 | gloire - souhaitent - vainqueurs - croix - mitraille | 58 | 5_gloire_souhaitent_vainqueurs_croix |
Training hyperparameters
- calculate_probabilities: True
- language: None
- low_memory: False
- min_topic_size: 10
- n_gram_range: (1, 1)
- nr_topics: None
- seed_topic_list: None
- top_n_words: 10
- verbose: False
- zeroshot_min_similarity: 0.7
- zeroshot_topic_list: None
Framework versions
- Numpy: 1.26.4
- HDBSCAN: 0.8.40
- UMAP: 0.5.7
- Pandas: 2.2.3
- Scikit-Learn: 1.5.2
- Sentence-transformers: 3.3.1
- Transformers: 4.46.3
- Numba: 0.60.0
- Plotly: 5.24.1
- Python: 3.10.12
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