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153 lines
5.9 KiB
Markdown
153 lines
5.9 KiB
Markdown
---
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title: Morphology
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tag: class
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source: spacy/morphology.pyx
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---
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Store the possible morphological analyses for a language, and index them by
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hash. To save space on each token, tokens only know the hash of their
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morphological analysis, so queries of morphological attributes are delegated to
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this class.
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## Morphology.\_\_init\_\_ {#init tag="method"}
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Create a Morphology object using the tag map, lemmatizer and exceptions.
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> #### Example
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>
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> ```python
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> from spacy.morphology import Morphology
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>
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> morphology = Morphology(strings, tag_map, lemmatizer)
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> ```
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| Name | Type | Description |
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| ------------ | ----------------- | ---------------------------------------------------------------------------------------------------------- |
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| `strings` | `StringStore` | The string store. |
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| `tag_map` | `Dict[str, Dict]` | The tag map. |
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| `lemmatizer` | `Lemmatizer` | The lemmatizer. |
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| `exc` | `Dict[str, Dict]` | A dictionary of exceptions in the format `{tag: {orth: {"POS": "X", "Feat1": "Val1, "Feat2": "Val2", ...}` |
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## Morphology.add {#add tag="method"}
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Insert a morphological analysis in the morphology table, if not already present.
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The morphological analysis may be provided in the UD FEATS format as a string or
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in the tag map dictionary format. Returns the hash of the new analysis.
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> #### Example
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>
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> ```python
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> feats = "Feat1=Val1|Feat2=Val2"
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> hash = nlp.vocab.morphology.add(feats)
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> assert hash == nlp.vocab.strings[feats]
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> ```
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| Name | Type | Description |
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| ---------- | ------------------ | --------------------------- |
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| `features` | `Union[Dict, str]` | The morphological features. |
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## Morphology.get {#get tag="method"}
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> #### Example
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>
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> ```python
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> feats = "Feat1=Val1|Feat2=Val2"
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> hash = nlp.vocab.morphology.add(feats)
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> assert nlp.vocab.morphology.get(hash) == feats
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> ```
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Get the FEATS string for the hash of the morphological analysis.
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| Name | Type | Description |
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| ------- | ---- | --------------------------------------- |
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| `morph` | int | The hash of the morphological analysis. |
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## Morphology.load_tag_map {#load_tag_map tag="method"}
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Replace the current tag map with the provided tag map.
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| Name | Type | Description |
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| --------- | ----------------- | ------------ |
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| `tag_map` | `Dict[str, Dict]` | The tag map. |
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## Morphology.load_morph_exceptions {#load_morph_exceptions tag="method"}
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Replace the current morphological exceptions with the provided exceptions.
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| Name | Type | Description |
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| ------------- | ----------------- | ----------------------------- |
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| `morph_rules` | `Dict[str, Dict]` | The morphological exceptions. |
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## Morphology.add_special_case {#add_special_case tag="method"}
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Add a special-case rule to the morphological analyzer. Tokens whose tag and orth
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match the rule will receive the specified properties.
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> #### Example
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>
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> ```python
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> attrs = {"POS": "DET", "Definite": "Def"}
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> morphology.add_special_case("DT", "the", attrs)
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> ```
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| Name | Type | Description |
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| ---------- | ---- | ---------------------------------------------- |
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| `tag_str` | str | The fine-grained tag. |
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| `orth_str` | str | The token text. |
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| `attrs` | dict | The features to assign for this token and tag. |
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## Morphology.exc {#exc tag="property"}
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The current morphological exceptions.
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| Name | Type | Description |
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| ---------- | ---- | --------------------------------------------------- |
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| **YIELDS** | dict | The current dictionary of morphological exceptions. |
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## Morphology.lemmatize {#lemmatize tag="method"}
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TODO
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## Morphology.feats_to_dict {#feats_to_dict tag="staticmethod"}
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Convert a string FEATS representation to a dictionary of features and values in
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the same format as the tag map.
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> #### Example
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>
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> ```python
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> from spacy.morphology import Morphology
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> d = Morphology.feats_to_dict("Feat1=Val1|Feat2=Val2")
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> assert d == {"Feat1": "Val1", "Feat2": "Val2"}
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> ```
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| Name | Type | Description |
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| ----------- | ---- | ------------------------------------------------------------------ |
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| `feats` | str | The morphological features in Universal Dependencies FEATS format. |
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| **RETURNS** | dict | The morphological features as a dictionary. |
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## Morphology.dict_to_feats {#dict_to_feats tag="staticmethod"}
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Convert a dictionary of features and values to a string FEATS representation.
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> #### Example
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>
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> ```python
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> from spacy.morphology import Morphology
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> f = Morphology.dict_to_feats({"Feat1": "Val1", "Feat2": "Val2"})
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> assert f == "Feat1=Val1|Feat2=Val2"
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> ```
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| Name | Type | Description |
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| ------------ | ----------------- | --------------------------------------------------------------------- |
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| `feats_dict` | `Dict[str, Dict]` | The morphological features as a dictionary. |
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| **RETURNS** | str | The morphological features as in Universal Dependencies FEATS format. |
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## Attributes {#attributes}
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| Name | Type | Description |
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| ------------- | ----- | -------------------------------------------- |
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| `FEATURE_SEP` | `str` | The FEATS feature separator. Default is `|`. |
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| `FIELD_SEP` | `str` | The FEATS field separator. Default is `=`. |
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| `VALUE_SEP` | `str` | The FEATS value separator. Default is `,`. |
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