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pszemraj/BERTopic-summcomparer-gauntlet-v0p1-sentence-t5-xl-document_text

sourceHugging Faceapache-2.0updated 9mo agoView on Hugging Face
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BERTopic-summcomparer-gauntlet-v0p1-sentence-t5-xl-document_text

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.

docs-in-topics

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("pszemraj/BERTopic-summcomparer-gauntlet-v0p1-sentence-t5-xl-document_text")

topic_model.get_topic_info()

Topic overview

  • —Number of topics: 16
  • —Number of training documents: 630

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

Topic IDTopic KeywordsTopic FrequencyLabel
-1convolutional - images - networks - superpixels - overfitting12-1convolutionalimagesnetworkssuperpixels
0bruno - guy - pdf - screentalk - he260brunoguypdfscreentalk
1elsa - arendelle - kristoff - frozen - anna941elsaarendellekristofffrozen
2gillis - script - room - ll - artie732gillisscriptroomll
3interpretation - explanation - theory - structure - merge723interpretationexplanationtheorystructure
4topics - topic - documents - corpus - document634topicstopicdocumentscorpus
5nemo - dory - chum - gill - fish565nemodorychumgill
6films - film - identity - trauma - zinnemann546filmsfilmidentitytrauma
7computational - data - pathology - medical - informatics477computationaldatapathologymedical
8images - captions - representations - embeddings - image268imagescaptionsrepresentationsembeddings
9zaroff - rainsford - hunt - hunting - general249zaroffrainsfordhunthunting
10cogvideo - interpolation - videos - coglm - frames2410cogvideointerpolationvideoscoglm
11assignment - essays - questions - projects - students1711assignmentessaysquestionsprojects
12things - ll - some - lol - explain1612thingsllsomelol
13videos - arxiv - visual - preprint - generative1313videosarxivvisualpreprint
14spectrograms - musecoder - melspectrogram - vocoding - spectrogram1314spectrogramsmusecodermelspectrogramvocoding

</details>

Training hyperparameters

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

Framework versions

  • —Numpy: 1.22.4
  • —HDBSCAN: 0.8.29
  • —UMAP: 0.5.3
  • —Pandas: 1.5.3
  • —Scikit-Learn: 1.2.2
  • —Sentence-transformers: 2.2.2
  • —Transformers: 4.29.2
  • —Numba: 0.56.4
  • —Plotly: 5.13.1
  • —Python: 3.10.11