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						--- | 
					
					
						
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						tags: | 
					
					
						
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						- bertopic | 
					
					
						
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						library_name: bertopic | 
					
					
						
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						pipeline_tag: text-classification | 
					
					
						
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						--- | 
					
					
						
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						# BERTopic_BrainlessChanel | 
					
					
						
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						This is a [BERTopic](https://github.com/MaartenGr/BERTopic) model.  | 
					
					
						
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						BERTopic is a flexible and modular topic modeling framework that allows for the generation of easily interpretable topics from large datasets.  | 
					
					
						
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						## Usage  | 
					
					
						
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						To use this model, please install BERTopic: | 
					
					
						
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						``` | 
					
					
						
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						pip install -U bertopic | 
					
					
						
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						``` | 
					
					
						
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						You can use the model as follows: | 
					
					
						
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						```python | 
					
					
						
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						from bertopic import BERTopic | 
					
					
						
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						topic_model = BERTopic.load("sdantonio/BERTopic_BrainlessChanel") | 
					
					
						
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						topic_model.get_topic_info() | 
					
					
						
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						``` | 
					
					
						
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						## Topic overview | 
					
					
						
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						* Number of topics: 4 | 
					
					
						
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						* Number of training documents: 68013 | 
					
					
						
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						<details> | 
					
					
						
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						  <summary>Click here for an overview of all topics.</summary> | 
					
					
						
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						  | Topic ID | Topic Keywords | Topic Frequency | Label |  | 
					
					
						
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						|----------|----------------|-----------------|-------|  | 
					
					
						
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						| 0 | missiles - ukrainiennes - israe - militaires - armes | 55292 | 0_missiles_ukrainiennes_israe_militaires |  | 
					
					
						
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						| 1 | ukrainiennes - israe - ukraine - militaires - armes | 12667 | 1_ukrainiennes_israe_ukraine_militaires |  | 
					
					
						
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						| 2 | brainlesschanel - journe - douce - rockn - belle | 31 | 2_brainlesschanel_journe_douce_rockn |  | 
					
					
						
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						| 3 | brainlesschanel - cible - afrique - douce - norve | 23 | 3_brainlesschanel_cible_afrique_douce | | 
					
					
						
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						   | 
					
					
						
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						</details> | 
					
					
						
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						## Training hyperparameters | 
					
					
						
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						* calculate_probabilities: False | 
					
					
						
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						* language: None | 
					
					
						
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						* low_memory: False | 
					
					
						
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						* min_topic_size: 10 | 
					
					
						
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						* n_gram_range: (1, 1) | 
					
					
						
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						* nr_topics: None | 
					
					
						
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						* seed_topic_list: None | 
					
					
						
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						* top_n_words: 10 | 
					
					
						
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						* verbose: False | 
					
					
						
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						* zeroshot_min_similarity: 0.7 | 
					
					
						
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						* zeroshot_topic_list: None | 
					
					
						
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						## Framework versions | 
					
					
						
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						* Numpy: 1.23.5 | 
					
					
						
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						* HDBSCAN: 0.8.38.post1 | 
					
					
						
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						* UMAP: 0.5.6 | 
					
					
						
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						* Pandas: 2.2.2 | 
					
					
						
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						* Scikit-Learn: 1.5.1 | 
					
					
						
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						* Sentence-transformers: 3.0.1 | 
					
					
						
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						* Transformers: 4.44.2 | 
					
					
						
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						* Numba: 0.60.0 | 
					
					
						
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						* Plotly: 5.24.0 | 
					
					
						
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						* Python: 3.10.12 | 
					
					
						
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						 |