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@ -622,13 +622,13 @@ categorizer is to use the [`spacy train`](/api/cli#train) command-line utility.
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In order to use this, you'll need training and evaluation data in the
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[JSON format](/api/annotation#json-input) spaCy expects for training.
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You can now train the model using a corpus for your language annotated with If
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your data is in one of the supported formats, the easiest solution might be to
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use the [`spacy convert`](/api/cli#convert) command-line utility. This supports
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several popular formats, including the IOB format for named entity recognition,
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the JSONL format produced by our annotation tool [Prodigy](https://prodi.gy),
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and the [CoNLL-U](http://universaldependencies.org/docs/format.html) format used
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by the [Universal Dependencies](http://universaldependencies.org/) corpus.
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If your data is in one of the supported formats, the easiest solution might be
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to use the [`spacy convert`](/api/cli#convert) command-line utility. This
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supports several popular formats, including the IOB format for named entity
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recognition, the JSONL format produced by our annotation tool
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[Prodigy](https://prodi.gy), and the
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[CoNLL-U](http://universaldependencies.org/docs/format.html) format used by the
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[Universal Dependencies](http://universaldependencies.org/) corpus.
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One thing to keep in mind is that spaCy expects to train its models from **whole
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documents**, not just single sentences. If your corpus only contains single
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