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Tidy up gold
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@ -54,7 +54,8 @@ def merge_sents(sents):
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m_deps[3].extend(head + i for head in heads)
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m_deps[4].extend(labels)
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m_deps[5].extend(ner)
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m_brackets.extend((b['first'] + i, b['last'] + i, b['label']) for b in brackets)
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m_brackets.extend((b['first'] + i, b['last'] + i, b['label'])
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for b in brackets)
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i += len(ids)
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return [(m_deps, m_brackets)]
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@ -80,6 +81,8 @@ def align(cand_words, gold_words):
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punct_re = re.compile(r'\W')
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def _min_edit_path(cand_words, gold_words):
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cdef:
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Pool mem
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@ -98,9 +101,9 @@ def _min_edit_path(cand_words, gold_words):
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mem = Pool()
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n_cand = len(cand_words)
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n_gold = len(gold_words)
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# Levenshtein distance, except we need the history, and we may want different
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# costs.
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# Mark operations with a string, and score the history using _edit_cost.
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# Levenshtein distance, except we need the history, and we may want
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# different costs. Mark operations with a string, and score the history
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# using _edit_cost.
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previous_row = []
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prev_costs = <int*>mem.alloc(n_gold + 1, sizeof(int))
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curr_costs = <int*>mem.alloc(n_gold + 1, sizeof(int))
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@ -144,9 +147,9 @@ def _min_edit_path(cand_words, gold_words):
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def minibatch(items, size=8):
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'''Iterate over batches of items. `size` may be an iterator,
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"""Iterate over batches of items. `size` may be an iterator,
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so that batch-size can vary on each step.
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'''
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"""
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if isinstance(size, int):
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size_ = itertools.repeat(8)
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else:
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@ -168,6 +171,7 @@ class GoldCorpus(object):
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train_path (unicode or Path): File or directory of training data.
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dev_path (unicode or Path): File or directory of development data.
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RETURNS (GoldCorpus): The newly created object.
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"""
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self.train_path = util.ensure_path(train_path)
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self.dev_path = util.ensure_path(dev_path)
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@ -222,7 +226,6 @@ class GoldCorpus(object):
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def dev_docs(self, nlp, gold_preproc=False):
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gold_docs = self.iter_gold_docs(nlp, self.dev_tuples, gold_preproc)
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#gold_docs = nlp.preprocess_gold(gold_docs)
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yield from gold_docs
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@classmethod
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@ -233,7 +236,6 @@ class GoldCorpus(object):
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raw_text = None
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else:
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paragraph_tuples = merge_sents(paragraph_tuples)
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docs = cls._make_docs(nlp, raw_text, paragraph_tuples,
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gold_preproc, noise_level=noise_level)
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golds = cls._make_golds(docs, paragraph_tuples)
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@ -248,17 +250,20 @@ class GoldCorpus(object):
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raw_text = add_noise(raw_text, noise_level)
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return [nlp.make_doc(raw_text)]
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else:
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return [Doc(nlp.vocab, words=add_noise(sent_tuples[1], noise_level))
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return [Doc(nlp.vocab,
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words=add_noise(sent_tuples[1], noise_level))
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for (sent_tuples, brackets) in paragraph_tuples]
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@classmethod
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def _make_golds(cls, docs, paragraph_tuples):
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assert len(docs) == len(paragraph_tuples)
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if len(docs) == 1:
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return [GoldParse.from_annot_tuples(docs[0], paragraph_tuples[0][0])]
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return [GoldParse.from_annot_tuples(docs[0],
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paragraph_tuples[0][0])]
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else:
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return [GoldParse.from_annot_tuples(doc, sent_tuples)
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for doc, (sent_tuples, brackets) in zip(docs, paragraph_tuples)]
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for doc, (sent_tuples, brackets)
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in zip(docs, paragraph_tuples)]
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@staticmethod
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def walk_corpus(path):
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@ -382,19 +387,21 @@ cdef class GoldParse:
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@classmethod
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def from_annot_tuples(cls, doc, annot_tuples, make_projective=False):
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_, words, tags, heads, deps, entities = annot_tuples
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return cls(doc, words=words, tags=tags, heads=heads, deps=deps, entities=entities,
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make_projective=make_projective)
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return cls(doc, words=words, tags=tags, heads=heads, deps=deps,
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entities=entities, make_projective=make_projective)
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def __init__(self, doc, annot_tuples=None, words=None, tags=None, heads=None,
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deps=None, entities=None, make_projective=False,
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def __init__(self, doc, annot_tuples=None, words=None, tags=None,
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heads=None, deps=None, entities=None, make_projective=False,
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cats=None):
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"""Create a GoldParse.
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doc (Doc): The document the annotations refer to.
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words (iterable): A sequence of unicode word strings.
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tags (iterable): A sequence of strings, representing tag annotations.
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heads (iterable): A sequence of integers, representing syntactic head offsets.
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deps (iterable): A sequence of strings, representing the syntactic relation types.
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heads (iterable): A sequence of integers, representing syntactic
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head offsets.
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deps (iterable): A sequence of strings, representing the syntactic
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relation types.
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entities (iterable): A sequence of named entity annotations, either as
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BILUO tag strings, or as `(start_char, end_char, label)` tuples,
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representing the entity positions.
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@ -404,9 +411,10 @@ cdef class GoldParse:
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document (usually a sentence). Unlike entity annotations, label
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annotations can overlap, i.e. a single word can be covered by
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multiple labelled spans. The TextCategorizer component expects
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true examples of a label to have the value 1.0, and negative examples
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of a label to have the value 0.0. Labels not in the dictionary are
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treated as missing -- the gradient for those labels will be zero.
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true examples of a label to have the value 1.0, and negative
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examples of a label to have the value 0.0. Labels not in the
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dictionary are treated as missing - the gradient for those labels
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will be zero.
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RETURNS (GoldParse): The newly constructed object.
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"""
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if words is None:
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@ -470,7 +478,7 @@ cdef class GoldParse:
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self.ner[i] = entities[gold_i]
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cycle = nonproj.contains_cycle(self.heads)
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if cycle != None:
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if cycle is not None:
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raise Exception("Cycle found: %s" % cycle)
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if make_projective:
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@ -497,20 +505,19 @@ cdef class GoldParse:
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def biluo_tags_from_offsets(doc, entities, missing='O'):
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"""Encode labelled spans into per-token tags, using the Begin/In/Last/Unit/Out
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scheme (BILUO).
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"""Encode labelled spans into per-token tags, using the
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Begin/In/Last/Unit/Out scheme (BILUO).
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doc (Doc): The document that the entity offsets refer to. The output tags
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will refer to the token boundaries within the document.
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entities (iterable): A sequence of `(start, end, label)` triples. `start` and
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`end` should be character-offset integers denoting the slice into the
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original string.
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entities (iterable): A sequence of `(start, end, label)` triples. `start`
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and `end` should be character-offset integers denoting the slice into
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the original string.
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RETURNS (list): A list of unicode strings, describing the tags. Each tag
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string will be of the form either "", "O" or "{action}-{label}", where
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action is one of "B", "I", "L", "U". The string "-" is used where the
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entity offsets don't align with the tokenization in the `Doc` object. The
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training algorithm will view these as missing values. "O" denotes a
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entity offsets don't align with the tokenization in the `Doc` object.
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The training algorithm will view these as missing values. "O" denotes a
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non-entity token. "B" denotes the beginning of a multi-token entity,
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"I" the inside of an entity of three or more tokens, and "L" the end
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of an entity of two or more tokens. "U" denotes a single-token entity.
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