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Update training docs
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include ../../_includes/_mixins
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p
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| This tutorial describes how to train new statistical models for spaCy's
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| This workflow describes how to train new statistical models for spaCy's
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| part-of-speech tagger, named entity recognizer and dependency parser.
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p
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| I'll start with some quick code examples, that describe how to train
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| each model. I'll then provide a bit of background about the algorithms,
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| and explain how the data and feature templates work.
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| Once the model is trained, you can then
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| #[+a("/docs/usage/saving-loading") save and load] it.
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+h(2, "train-pos-tagger") Training the part-of-speech tagger
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@ -48,7 +45,21 @@ p
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p
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+button(gh("spaCy", "examples/training/train_ner.py"), false, "secondary") Full example
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+h(2, "train-entity") Training the dependency parser
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+h(2, "extend-entity") Extending the named entity recognizer
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p
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| All #[+a("/docs/usage/models") spaCy models] support online learning, so
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| you can update a pre-trained model with new examples. You can even add
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| new classes to an existing model, to recognise a new entity type,
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| part-of-speech, or syntactic relation. Updating an existing model is
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| particularly useful as a "quick and dirty solution", if you have only a
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| few corrections or annotations.
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p.o-inline-list
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+button(gh("spaCy", "examples/training/train_new_entity_type.py"), true, "secondary") Full example
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+button("/docs/usage/training-ner", false, "secondary") Usage Workflow
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+h(2, "train-dependency") Training the dependency parser
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+code.
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from spacy.vocab import Vocab
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@ -67,7 +78,7 @@ p
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p
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+button(gh("spaCy", "examples/training/train_parser.py"), false, "secondary") Full example
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+h(2, 'feature-templates') Customizing the feature extraction
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+h(2, "feature-templates") Customizing the feature extraction
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p
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| spaCy currently uses linear models for the tagger, parser and entity
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