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144 lines
5.8 KiB
Plaintext
144 lines
5.8 KiB
Plaintext
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---
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title: What's New in v3.6
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teaser: New features and how to upgrade
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menu:
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- ['New Features', 'features']
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- ['Upgrading Notes', 'upgrading']
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---
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## New features {id="features",hidden="true"}
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spaCy v3.6 adds the new [`SpanFinder`](/api/spanfinder) component to the core
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spaCy library and new trained pipelines for Slovenian.
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### SpanFinder {id="spanfinder"}
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The [`SpanFinder`](/api/spanfinder) component identifies potentially
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overlapping, unlabeled spans by identifying span start and end tokens. It is
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intended for use in combination with a component like
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[`SpanCategorizer`](/api/spancategorizer) that may further filter or label the
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spans. See our
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[Spancat blog post](https://explosion.ai/blog/spancat#span-finder) for a more
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detailed introduction to the span finder.
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To train a pipeline with `span_finder` + `spancat`, remember to add
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`span_finder` (and its `tok2vec` or `transformer` if required) to
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`[training.annotating_components]` so that the `spancat` component can be
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trained directly from its predictions:
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```ini
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[nlp]
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pipeline = ["tok2vec","span_finder","spancat"]
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[training]
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annotating_components = ["tok2vec","span_finder"]
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```
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In practice it can be helpful to initially train the `span_finder` separately
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before [sourcing](/usage/processing-pipelines#sourced-components) it (along with
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its `tok2vec`) into the `spancat` pipeline for further training. Otherwise the
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memory usage can spike for `spancat` in the first few training steps if the
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`span_finder` makes a large number of predictions.
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### Additional features and improvements {id="additional-features-and-improvements"}
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- Language updates:
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- Add initial support for Malay.
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- Update Latin defaults to support noun chunks, update lexical/tokenizer
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settings and add example sentences.
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- Support `spancat_singlelabel` in `spacy debug data` CLI.
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- Add `doc.spans` rendering to `spacy evaluate` CLI displaCy output.
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- Support custom token/lexeme attribute for vectors.
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- Add option to return scores separately keyed by component name with
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`spacy evaluate --per-component`, `Language.evaluate(per_component=True)` and
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`Scorer.score(per_component=True)`. This is useful when the pipeline contains
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more than one of the same component like `textcat` that may have overlapping
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scores keys.
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- Typing updates for `PhraseMatcher` and `SpanGroup`.
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## Trained pipelines {id="pipelines"}
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### New trained pipelines {id="new-pipelines"}
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v3.6 introduces new pipelines for Slovenian, which use the trainable lemmatizer
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and [floret vectors](https://github.com/explosion/floret).
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| Package | UPOS | Parser LAS | NER F |
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| ------------------------------------------------- | ---: | ---------: | ----: |
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| [`sl_core_news_sm`](/models/sl#sl_core_news_sm) | 96.9 | 82.1 | 62.9 |
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| [`sl_core_news_md`](/models/sl#sl_core_news_md) | 97.6 | 84.3 | 73.5 |
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| [`sl_core_news_lg`](/models/sl#sl_core_news_lg) | 97.7 | 84.3 | 79.0 |
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| [`sl_core_news_trf`](/models/sl#sl_core_news_trf) | 99.0 | 91.7 | 90.0 |
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### Pipeline updates {id="pipeline-updates"}
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The English pipelines have been updated to improve handling of contractions with
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various apostrophes and to lemmatize "get" as a passive auxiliary.
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The Danish pipeline `da_core_news_trf` has been updated to use
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[`vesteinn/DanskBERT`](https://huggingface.co/vesteinn/DanskBERT) with
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performance improvements across the board.
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## Notes about upgrading from v3.5 {id="upgrading"}
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### SpanGroup spans are now required to be from the same doc {id="spangroup-spans"}
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When initializing a `SpanGroup`, there is a new check to verify that all added
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spans refer to the current doc. Without this check, it was possible to run into
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string store or other errors.
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One place this may crop up is when creating `Example` objects for training with
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custom spans:
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```diff
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doc = Doc(nlp.vocab, words=tokens) # predicted doc
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example = Example.from_dict(doc, {"ner": iob_tags})
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# use the reference doc when creating reference spans
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- span = Span(doc, 0, 5, "ORG")
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+ span = Span(example.reference, 0, 5, "ORG")
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example.reference.spans[spans_key] = [span]
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```
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### Pipeline package version compatibility {id="version-compat"}
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> #### Using legacy implementations
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>
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> In spaCy v3, you'll still be able to load and reference legacy implementations
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> via [`spacy-legacy`](https://github.com/explosion/spacy-legacy), even if the
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> components or architectures change and newer versions are available in the
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> core library.
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When you're loading a pipeline package trained with an earlier version of spaCy
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v3, you will see a warning telling you that the pipeline may be incompatible.
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This doesn't necessarily have to be true, but we recommend running your
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pipelines against your test suite or evaluation data to make sure there are no
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unexpected results.
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If you're using one of the [trained pipelines](/models) we provide, you should
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run [`spacy download`](/api/cli#download) to update to the latest version. To
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see an overview of all installed packages and their compatibility, you can run
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[`spacy validate`](/api/cli#validate).
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If you've trained your own custom pipeline and you've confirmed that it's still
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working as expected, you can update the spaCy version requirements in the
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[`meta.json`](/api/data-formats#meta):
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```diff
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- "spacy_version": ">=3.5.0,<3.6.0",
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+ "spacy_version": ">=3.5.0,<3.7.0",
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```
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### Updating v3.5 configs
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To update a config from spaCy v3.5 with the new v3.6 settings, run
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[`init fill-config`](/api/cli#init-fill-config):
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```cli
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$ python -m spacy init fill-config config-v3.5.cfg config-v3.6.cfg
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```
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In many cases ([`spacy train`](/api/cli#train),
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[`spacy.load`](/api/top-level#spacy.load)), the new defaults will be filled in
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automatically, but you'll need to fill in the new settings to run
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[`debug config`](/api/cli#debug) and [`debug data`](/api/cli#debug-data).
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