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https://github.com/explosion/spaCy.git
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Rename argument: doc_or_span/obj -> doclike (#5463)
* doc_or_span -> obj
* Revert "doc_or_span -> obj"
This reverts commit 78bb9ff5e0
.
* obj -> doclike
* Refer to correct object
This commit is contained in:
parent
d8f3190c0a
commit
a9cb2882cb
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@ -5,7 +5,7 @@ from ...symbols import NOUN, PROPN, PRON
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from ...errors import Errors
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def noun_chunks(obj):
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def noun_chunks(doclike):
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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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@ -28,7 +28,7 @@ def noun_chunks(obj):
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"og",
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"app",
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]
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doc = obj.doc # Ensure works on both Doc and Span.
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doc = doclike.doc # Ensure works on both Doc and Span.
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if not doc.is_parsed:
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raise ValueError(Errors.E029)
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@ -38,7 +38,7 @@ def noun_chunks(obj):
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close_app = doc.vocab.strings.add("nk")
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rbracket = 0
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for i, word in enumerate(obj):
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for i, word in enumerate(doclike):
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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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@ -5,7 +5,7 @@ from ...symbols import NOUN, PROPN, PRON
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from ...errors import Errors
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def noun_chunks(obj):
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def noun_chunks(doclike):
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"""
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Detect base noun phrases. Works on both Doc and Span.
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"""
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@ -14,7 +14,7 @@ def noun_chunks(obj):
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# obj tag corrects some DEP tagger mistakes.
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# Further improvement of the models will eliminate the need for this tag.
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labels = ["nsubj", "obj", "iobj", "appos", "ROOT", "obl"]
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doc = obj.doc # Ensure works on both Doc and Span.
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doc = doclike.doc # Ensure works on both Doc and Span.
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if not doc.is_parsed:
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raise ValueError(Errors.E029)
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@ -24,7 +24,7 @@ def noun_chunks(obj):
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nmod = doc.vocab.strings.add("nmod")
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np_label = doc.vocab.strings.add("NP")
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seen = set()
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for i, word in enumerate(obj):
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for i, word in enumerate(doclike):
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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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@ -5,7 +5,7 @@ from ...symbols import NOUN, PROPN, PRON
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from ...errors import Errors
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def noun_chunks(obj):
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def noun_chunks(doclike):
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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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@ -20,7 +20,7 @@ def noun_chunks(obj):
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"attr",
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"ROOT",
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]
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doc = obj.doc # Ensure works on both Doc and Span.
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doc = doclike.doc # Ensure works on both Doc and Span.
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if not doc.is_parsed:
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raise ValueError(Errors.E029)
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@ -29,7 +29,7 @@ def noun_chunks(obj):
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conj = doc.vocab.strings.add("conj")
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np_label = doc.vocab.strings.add("NP")
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seen = set()
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for i, word in enumerate(obj):
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for i, word in enumerate(doclike):
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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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@ -5,8 +5,8 @@ from ...symbols import NOUN, PROPN, PRON, VERB, AUX
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from ...errors import Errors
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def noun_chunks(obj):
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doc = obj.doc
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def noun_chunks(doclike):
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doc = doclike.doc
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if not doc.is_parsed:
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raise ValueError(Errors.E029)
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@ -21,7 +21,7 @@ def noun_chunks(obj):
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np_right_deps = [doc.vocab.strings.add(label) for label in right_labels]
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stop_deps = [doc.vocab.strings.add(label) for label in stop_labels]
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token = doc[0]
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while token and token.i < len(doc):
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while token and token.i < len(doclike):
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if token.pos in [PROPN, NOUN, PRON]:
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left, right = noun_bounds(
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doc, token, np_left_deps, np_right_deps, stop_deps
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@ -5,7 +5,7 @@ from ...symbols import NOUN, PROPN, PRON
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from ...errors import Errors
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def noun_chunks(obj):
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def noun_chunks(doclike):
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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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@ -20,7 +20,7 @@ def noun_chunks(obj):
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"attr",
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"ROOT",
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]
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doc = obj.doc # Ensure works on both Doc and Span.
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doc = doclike.doc # Ensure works on both Doc and Span.
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if not doc.is_parsed:
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raise ValueError(Errors.E029)
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@ -29,7 +29,7 @@ def noun_chunks(obj):
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conj = doc.vocab.strings.add("conj")
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np_label = doc.vocab.strings.add("NP")
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seen = set()
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for i, word in enumerate(obj):
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for i, word in enumerate(doclike):
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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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@ -5,7 +5,7 @@ from ...symbols import NOUN, PROPN, PRON
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from ...errors import Errors
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def noun_chunks(obj):
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def noun_chunks(doclike):
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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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@ -19,7 +19,7 @@ def noun_chunks(obj):
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"nmod",
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"nmod:poss",
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]
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doc = obj.doc # Ensure works on both Doc and Span.
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doc = doclike.doc # Ensure works on both Doc and Span.
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if not doc.is_parsed:
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raise ValueError(Errors.E029)
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@ -28,7 +28,7 @@ def noun_chunks(obj):
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conj = doc.vocab.strings.add("conj")
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np_label = doc.vocab.strings.add("NP")
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seen = set()
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for i, word in enumerate(obj):
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for i, word in enumerate(doclike):
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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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@ -5,7 +5,7 @@ from ...symbols import NOUN, PROPN, PRON
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from ...errors import Errors
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def noun_chunks(obj):
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def noun_chunks(doclike):
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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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@ -19,7 +19,7 @@ def noun_chunks(obj):
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"nmod",
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"nmod:poss",
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]
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doc = obj.doc # Ensure works on both Doc and Span.
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doc = doclike.doc # Ensure works on both Doc and Span.
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if not doc.is_parsed:
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raise ValueError(Errors.E029)
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@ -28,7 +28,7 @@ def noun_chunks(obj):
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conj = doc.vocab.strings.add("conj")
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np_label = doc.vocab.strings.add("NP")
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seen = set()
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for i, word in enumerate(obj):
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for i, word in enumerate(doclike):
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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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@ -5,7 +5,7 @@ from ...symbols import NOUN, PROPN, PRON
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from ...errors import Errors
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def noun_chunks(obj):
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def noun_chunks(doclike):
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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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@ -19,7 +19,7 @@ def noun_chunks(obj):
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"nmod",
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"nmod:poss",
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]
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doc = obj.doc # Ensure works on both Doc and Span.
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doc = doclike.doc # Ensure works on both Doc and Span.
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if not doc.is_parsed:
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raise ValueError(Errors.E029)
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@ -28,7 +28,7 @@ def noun_chunks(obj):
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conj = doc.vocab.strings.add("conj")
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np_label = doc.vocab.strings.add("NP")
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seen = set()
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for i, word in enumerate(obj):
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for i, word in enumerate(doclike):
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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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@ -5,7 +5,7 @@ from ...symbols import NOUN, PROPN, PRON
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from ...errors import Errors
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def noun_chunks(obj):
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def noun_chunks(doclike):
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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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@ -20,7 +20,7 @@ def noun_chunks(obj):
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"nmod",
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"nmod:poss",
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]
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doc = obj.doc # Ensure works on both Doc and Span.
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doc = doclike.doc # Ensure works on both Doc and Span.
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if not doc.is_parsed:
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raise ValueError(Errors.E029)
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@ -29,7 +29,7 @@ def noun_chunks(obj):
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conj = doc.vocab.strings.add("conj")
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np_label = doc.vocab.strings.add("NP")
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seen = set()
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for i, word in enumerate(obj):
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for i, word in enumerate(doclike):
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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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@ -213,28 +213,28 @@ cdef class Matcher:
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else:
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yield doc
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def __call__(self, object doc_or_span):
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def __call__(self, object doclike):
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"""Find all token sequences matching the supplied pattern.
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doc_or_span (Doc or Span): The document to match over.
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doclike (Doc or Span): The document to match over.
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RETURNS (list): A list of `(key, start, end)` tuples,
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describing the matches. A match tuple describes a span
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`doc[start:end]`. The `label_id` and `key` are both integers.
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"""
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if isinstance(doc_or_span, Doc):
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doc = doc_or_span
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if isinstance(doclike, Doc):
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doc = doclike
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length = len(doc)
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elif isinstance(doc_or_span, Span):
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doc = doc_or_span.doc
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length = doc_or_span.end - doc_or_span.start
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elif isinstance(doclike, Span):
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doc = doclike.doc
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length = doclike.end - doclike.start
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else:
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raise ValueError(Errors.E195.format(good="Doc or Span", got=type(doc_or_span).__name__))
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raise ValueError(Errors.E195.format(good="Doc or Span", got=type(doclike).__name__))
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if len(set([LEMMA, POS, TAG]) & self._seen_attrs) > 0 \
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and not doc.is_tagged:
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raise ValueError(Errors.E155.format())
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if DEP in self._seen_attrs and not doc.is_parsed:
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raise ValueError(Errors.E156.format())
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matches = find_matches(&self.patterns[0], self.patterns.size(), doc_or_span, length,
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matches = find_matches(&self.patterns[0], self.patterns.size(), doclike, length,
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extensions=self._extensions, predicates=self._extra_predicates)
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for i, (key, start, end) in enumerate(matches):
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on_match = self._callbacks.get(key, None)
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@ -257,7 +257,7 @@ def unpickle_matcher(vocab, patterns, callbacks):
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return matcher
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cdef find_matches(TokenPatternC** patterns, int n, object doc_or_span, int length, extensions=None, predicates=tuple()):
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cdef find_matches(TokenPatternC** patterns, int n, object doclike, int length, extensions=None, predicates=tuple()):
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"""Find matches in a doc, with a compiled array of patterns. Matches are
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returned as a list of (id, start, end) tuples.
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@ -286,7 +286,7 @@ cdef find_matches(TokenPatternC** patterns, int n, object doc_or_span, int lengt
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else:
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nr_extra_attr = 0
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extra_attr_values = <attr_t*>mem.alloc(length, sizeof(attr_t))
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for i, token in enumerate(doc_or_span):
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for i, token in enumerate(doclike):
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for name, index in extensions.items():
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value = token._.get(name)
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if isinstance(value, basestring):
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@ -298,7 +298,7 @@ cdef find_matches(TokenPatternC** patterns, int n, object doc_or_span, int lengt
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for j in range(n):
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states.push_back(PatternStateC(patterns[j], i, 0))
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transition_states(states, matches, predicate_cache,
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doc_or_span[i], extra_attr_values, predicates)
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doclike[i], extra_attr_values, predicates)
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extra_attr_values += nr_extra_attr
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predicate_cache += len(predicates)
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# Handle matches that end in 0-width patterns
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