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			16 lines
		
	
	
		
			758 B
		
	
	
	
		
			Plaintext
		
	
	
	
	
	
| //- 💫 DOCS > USAGE > VECTORS & SIMILARITY > BASICS
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| 
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| +aside("Training word vectors")
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|     |  Dense, real valued vectors representing distributional similarity
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|     |  information are now a cornerstone of practical NLP. The most common way
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|     |  to train these vectors is the #[+a("https://en.wikipedia.org/wiki/Word2vec") word2vec]
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|     |  family of algorithms. The default
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|     |  #[+a("/models/en") English model] installs
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|     |  300-dimensional vectors trained on the
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|     |  #[+a("http://commoncrawl.org") Common Crawl] corpus.
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|     |  If you need to train a word2vec model, we recommend the implementation in
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|     |  the Python library #[+a("https://radimrehurek.com/gensim/") Gensim].
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| 
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| include ../_spacy-101/_similarity
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| include ../_spacy-101/_word-vectors
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