MARTINI_enrich_BERTopic_ConPy

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_ConPy")

topic_model.get_topic_info()

Topic overview

  • Number of topics: 9
  • Number of training documents: 921
Click here for an overview of all topics.
Topic ID Topic Keywords Topic Frequency Label
-1 tucker - cuomo - supreme - immigration - subtitles 38 -1_tucker_cuomo_supreme_immigration
0 fauci - unvaxed - tyranny - jab - mandates 374 0_fauci_unvaxed_tyranny_jab
1 tucker - fauci - tonight - taliban - democrats 155 1_tucker_fauci_tonight_taliban
2 tucker - foxnews - tonight - presidential - 2020 86 2_tucker_foxnews_tonight_presidential
3 tucker - tonight - texas - migrants - governor 71 3_tucker_tonight_texas_migrants
4 jfk - undercover - ufo - documentary - assassination 62 4_jfk_undercover_ufo_documentary
5 tucker - carlson - zelensky - tonight - invading 55 5_tucker_carlson_zelensky_tonight
6 fauci - unvaxed - david - podcast - tyranny 41 6_fauci_unvaxed_david_podcast
7 crimea - sanctions - ussr - ukrainian - sovereignty 39 7_crimea_sanctions_ussr_ukrainian

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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