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karinegabsschon/BERTopic_Environmental

sourceHugging Faceupdated 1y agoView on Hugging Face
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tags:

  • bertopic libraryname: bertopic pipelinetag: text-classification ---

BERTopic_Environmental

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:

python
from bertopic import BERTopic
topic_model = BERTopic.load("karinegabsschon/BERTopic_Environmental")

topic_model.get_topic_info()

Topic overview

  • Number of topics: 26
  • Number of training documents: 905

<details> <summary>Click here for an overview of all topics.</summary>

Topic IDTopic KeywordsTopic FrequencyLabel
-1electric - car - cars - charging - vehicles11-1electriccarcarscharging
0battery - batteries - lithium - catl - technology2130batterybatterieslithiumcatl
1byd - charging - dolphin - chinese - new611bydchargingdolphinchinese
2charging - ev - chargers - ev charging - electric582chargingevchargersev charging
3zero - government - uk - mandate - electric573zerogovernmentukmandate
4electric - charging - points - france - car494electricchargingpointsfrance
5battery - lithium - recycling - batteries - supply485batterylithiumrecyclingbatteries
6cars - combustion - study - electric - car366carscombustionstudyelectric
7percent - cars - market - sales - vehicles337percentcarsmarketsales
8fires - safety - battery - electric - cars298firessafetybatteryelectric
9charging - electric - sweden - vehicles - circle299chargingelectricswedenvehicles
10tax - drivers - petrol - ev - rates2510taxdriverspetrolev
11kia - car - model - electric - range2511kiacarmodelelectric
12cent - car - petrol - evs - drivers2312centcarpetrolevs
13charging - stations - charging stations - charging points - points2313chargingstationscharging stationscharging points
14india - ev - green - mobility - electric2314indiaevgreenmobility
15indonesia - battery - lg - ev - ev battery2015indonesiabatterylgev
16department - flames - police - car - tesla2016departmentflamespolicecar
17transport - ireland - council - ev - climate1917transportirelandcouncilev
18toyota - electric - new - europe - hyundai1918toyotaelectricneweurope
19sales - new - electric - cent - car1719salesnewelectriccent
20european - commission - eu - von - der1520europeancommissioneuvon
21power - blackout - spain - homes - electricity1421powerblackoutspainhomes
22nissan - leaf - micra - new - generation1322nissanleafmicranew
23ship - coast - vessel - coast guard - guard1323shipcoastvesselcoast guard
24id - volkswagen - vw - every1 - id every11224idvolkswagenvwevery1

</details>

Training hyperparameters

  • calculate_probabilities: False
  • language: None
  • low_memory: False
  • mintopicsize: 10
  • ngramrange: (1, 1)
  • nr_topics: None
  • seedtopiclist: None
  • topnwords: 10
  • verbose: True
  • zeroshotminsimilarity: 0.7
  • zeroshottopiclist: None

Framework versions

  • Numpy: 2.0.2
  • HDBSCAN: 0.8.40
  • UMAP: 0.5.8
  • Pandas: 2.2.2
  • Scikit-Learn: 1.6.1
  • Sentence-transformers: 4.1.0
  • Transformers: 4.53.0
  • Numba: 0.60.0
  • Plotly: 5.24.1
  • Python: 3.11.13