mirror of https://github.com/explosion/spaCy.git
Add language-specific syntax iterators to en and de
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@ -5,6 +5,7 @@ from .tokenizer_exceptions import TOKENIZER_EXCEPTIONS
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from .tag_map import TAG_MAP
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from .stop_words import STOP_WORDS
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from .lemmatizer import LOOKUP
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from .syntax_iterators import SYNTAX_ITERATORS
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from ..tokenizer_exceptions import BASE_EXCEPTIONS
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from ...language import Language
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@ -23,6 +24,7 @@ class German(Language):
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tokenizer_exceptions = update_exc(BASE_EXCEPTIONS, TOKENIZER_EXCEPTIONS)
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tag_map = dict(TAG_MAP)
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stop_words = set(STOP_WORDS)
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syntax_iterators = dict(SYNTAX_ITERATORS)
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@classmethod
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def create_lemmatizer(cls, nlp=None):
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@ -0,0 +1,38 @@
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# coding: utf8
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from __future__ import unicode_literals
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from ...symbols import NOUN, PROPN, PRON
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def noun_chunks(obj):
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"""
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Detect base noun phrases from a dependency parse. Works on both Doc and Span.
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"""
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# this iterator extracts spans headed by NOUNs starting from the left-most
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# syntactic dependent until the NOUN itself for close apposition and
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# measurement construction, the span is sometimes extended to the right of
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# the NOUN. Example: "eine Tasse Tee" (a cup (of) tea) returns "eine Tasse Tee"
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# and not just "eine Tasse", same for "das Thema Familie".
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labels = ['sb', 'oa', 'da', 'nk', 'mo', 'ag', 'ROOT', 'root', 'cj', 'pd', 'og', 'app']
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doc = obj.doc # Ensure works on both Doc and Span.
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np_label = doc.vocab.strings['NP']
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np_deps = set(doc.vocab.strings[label] for label in labels)
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close_app = doc.vocab.strings['nk']
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rbracket = 0
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for i, word in enumerate(obj):
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if i < rbracket:
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continue
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if word.pos in (NOUN, PROPN, PRON) and word.dep in np_deps:
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rbracket = word.i+1
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# try to extend the span to the right
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# to capture close apposition/measurement constructions
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for rdep in doc[word.i].rights:
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if rdep.pos in (NOUN, PROPN) and rdep.dep == close_app:
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rbracket = rdep.i+1
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yield word.left_edge.i, rbracket, np_label
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SYNTAX_ITERATORS = {
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'noun_chunks': noun_chunks
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}
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@ -7,6 +7,7 @@ from .stop_words import STOP_WORDS
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from .lex_attrs import LEX_ATTRS
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from .morph_rules import MORPH_RULES
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from .lemmatizer import LEMMA_RULES, LEMMA_INDEX, LEMMA_EXC
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from .syntax_iterators import SYNTAX_ITERATORS
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from ..tokenizer_exceptions import BASE_EXCEPTIONS
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from ...language import Language
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@ -29,6 +30,7 @@ class English(Language):
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lemma_rules = dict(LEMMA_RULES)
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lemma_index = dict(LEMMA_INDEX)
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lemma_exc = dict(LEMMA_EXC)
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sytax_iterators = dict(SYNTAX_ITERATORS)
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__all__ = ['English']
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@ -0,0 +1,43 @@
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# coding: utf8
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from __future__ import unicode_literals
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from ...symbols import NOUN, PROPN, PRON
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def noun_chunks(obj):
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"""
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Detect base noun phrases from a dependency parse. Works on both Doc and Span.
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"""
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labels = ['nsubj', 'dobj', 'nsubjpass', 'pcomp', 'pobj',
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'attr', 'ROOT']
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doc = obj.doc # Ensure works on both Doc and Span.
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np_deps = [doc.vocab.strings[label] for label in labels]
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conj = doc.vocab.strings['conj']
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np_label = doc.vocab.strings['NP']
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seen = set()
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for i, word in enumerate(obj):
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if word.pos not in (NOUN, PROPN, PRON):
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continue
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# Prevent nested chunks from being produced
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if word.i in seen:
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continue
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if word.dep in np_deps:
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if any(w.i in seen for w in word.subtree):
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continue
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seen.update(j for j in range(word.left_edge.i, word.i+1))
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yield word.left_edge.i, word.i+1, np_label
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elif word.dep == conj:
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head = word.head
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while head.dep == conj and head.head.i < head.i:
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head = head.head
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# If the head is an NP, and we're coordinated to it, we're an NP
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if head.dep in np_deps:
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if any(w.i in seen for w in word.subtree):
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continue
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seen.update(j for j in range(word.left_edge.i, word.i+1))
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yield word.left_edge.i, word.i+1, np_label
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SYNTAX_ITERATORS = {
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'noun_chunks': noun_chunks
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}
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