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Update projects.md [ci skip]
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@ -488,7 +488,8 @@ data for machine learning models, developed by us. It integrates with spaCy
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out-of-the-box and provides many different
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[annotation recipes](https://prodi.gy/docs/recipes) for a variety of NLP tasks,
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with and without a model in the loop. If Prodigy is installed in your project,
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you can
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you can start the annotation server from your `project.yml` for a tight feedback
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loop between data development and training.
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The following example command starts the Prodigy app using the
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[`ner.correct`](https://prodi.gy/docs/recipes#ner-correct) recipe and streams in
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@ -497,6 +498,12 @@ then correct the suggestions manually in the UI. After you save and exit the
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server, the full dataset is exported in spaCy's format and split into a training
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and evaluation set.
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> #### Example usage
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>
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> ```bash
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> $ python -m spacy project run annotate
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> ```
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<!-- prettier-ignore -->
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```yaml
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### project.yml
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@ -509,7 +516,9 @@ commands:
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- name: annotate
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- script:
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- 'python -m prodigy ner.correct {PRODIGY_DATASET} ./assets/raw_data.jsonl {PRODIGY_MODEL} --labels {PRODIGY_LABELS}'
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- 'python -m prodigy data-to-spacy ./corpus/train.spacy ./corpus/eval.spacy --ner {PRODIGY_DATASET}'
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- 'python -m prodigy data-to-spacy ./corpus/train.json ./corpus/eval.json --ner {PRODIGY_DATASET}'
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- 'python -m spacy convert ./corpus/train.json ./corpus/train.spacy'
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- 'python -m spacy convert ./corpus/eval.json ./corpus/eval.spacy'
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- deps:
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- 'assets/raw_data.jsonl'
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- outputs:
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@ -517,6 +526,15 @@ commands:
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- 'corpus/eval.spacy'
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```
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You can use the same approach for other types of projects and annotation
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workflows, including
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[text classification](https://prodi.gy/docs/recipes#textcat),
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[dependency parsing](https://prodi.gy/docs/recipes#dep),
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[part-of-speech tagging](https://prodi.gy/docs/recipes#pos) or fully
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[custom recipes](https://prodi.gy/docs/custom-recipes) – for instance, an A/B
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evaluation workflow that lets you compare two different models and their
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results.
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<Project id="integrations/prodigy">
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Lorem ipsum dolor sit amet, consectetur adipiscing elit. Phasellus interdum
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@ -567,6 +585,12 @@ MODELS = [name.strip() for name in sys.argv[1].split(",")]
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spacy_streamlit.visualize(MODELS, DEFAULT_TEXT, visualizers=["ner"])
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```
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> #### Example usage
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>
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> ```bash
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> $ python -m spacy project run visualize
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> ```
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<!-- prettier-ignore -->
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```yaml
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### project.yml
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@ -591,7 +615,33 @@ mattis pretium.
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### FastAPI {#fastapi} <IntegrationLogo name="fastapi" width={100} height="auto" align="right" />
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<!-- TODO: come up with example – there's not much integration needed, but it'd be nice to show an example that addresses some of the main concerns for serving ML (workers etc.) -->
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[FastAPI](https://fastapi.tiangolo.com/) is a modern high-performance framework
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for building REST APIs with Python, based on Python
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[type hints](https://fastapi.tiangolo.com/python-types/). It's become a popular
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library for serving machine learning models and
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```python
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# TODO: show an example that addresses some of the main concerns for serving ML (workers etc.)
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```
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> #### Example usage
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>
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> ```bash
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> $ python -m spacy project run visualize
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> ```
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<!-- prettier-ignore -->
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```yaml
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### project.yml
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commands:
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- name: serve
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help: "Serve the trained model with FastAPI"
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script:
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- 'python ./scripts/serve.py ./training/model-best'
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deps:
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- 'training/model-best'
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no_skip: true
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```
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<Project id="integrations/fastapi">
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