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Support oracle segmentation in ud-train CLI command
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@ -161,9 +161,19 @@ def golds_to_gold_tuples(docs, golds):
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##############
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def evaluate(nlp, text_loc, gold_loc, sys_loc, limit=None):
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with text_loc.open('r', encoding='utf8') as text_file:
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texts = split_text(text_file.read())
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docs = list(nlp.pipe(texts))
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if text_loc.parts[-1].endswith('.conllu'):
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docs = []
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with text_loc.open() as file_:
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for conllu_doc in read_conllu(file_):
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for conllu_sent in conllu_doc:
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words = [line[1] for line in conllu_sent]
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docs.append(Doc(nlp.vocab, words=words))
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for name, component in nlp.pipeline:
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docs = list(component.pipe(docs))
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else:
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with text_loc.open('r', encoding='utf8') as text_file:
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texts = split_text(text_file.read())
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docs = list(nlp.pipe(texts))
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with sys_loc.open('w', encoding='utf8') as out_file:
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write_conllu(docs, out_file)
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with gold_loc.open('r', encoding='utf8') as gold_file:
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@ -261,12 +271,12 @@ def load_nlp(corpus, config, vectors=None):
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def initialize_pipeline(nlp, docs, golds, config, device):
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nlp.add_pipe(nlp.create_pipe('tagger'))
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nlp.add_pipe(nlp.create_pipe('parser'))
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if config.multitask_tag:
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nlp.parser.add_multitask_objective('tag')
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if config.multitask_sent:
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nlp.parser.add_multitask_objective('sent_start')
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nlp.add_pipe(nlp.create_pipe('tagger'))
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for gold in golds:
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for tag in gold.tags:
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if tag is not None:
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@ -328,10 +338,12 @@ class TreebankPaths(object):
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config=("Path to json formatted config file", "positional"),
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limit=("Size limit", "option", "n", int),
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use_gpu=("Use GPU", "option", "g", int),
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use_oracle_segments=("Use oracle segments", "flag", "G", int),
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vectors_dir=("Path to directory with pre-trained vectors, named e.g. en/",
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"option", "v", Path),
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)
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def main(ud_dir, parses_dir, config, corpus, limit=0, use_gpu=-1, vectors_dir=None):
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def main(ud_dir, parses_dir, config, corpus, limit=0, use_gpu=-1, vectors_dir=None,
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use_oracle_segments=False):
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spacy.util.fix_random_seed()
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lang.zh.Chinese.Defaults.use_jieba = False
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lang.ja.Japanese.Defaults.use_janome = False
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@ -344,13 +356,17 @@ def main(ud_dir, parses_dir, config, corpus, limit=0, use_gpu=-1, vectors_dir=No
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nlp = load_nlp(paths.lang, config, vectors=vectors_dir)
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docs, golds = read_data(nlp, paths.train.conllu.open(), paths.train.text.open(),
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max_doc_length=config.max_doc_length, limit=limit)
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max_doc_length=None, limit=limit)
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optimizer = initialize_pipeline(nlp, docs, golds, config, use_gpu)
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batch_sizes = compounding(config.batch_size//10, config.batch_size, 1.001)
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nlp.parser.cfg['beam_update_prob'] = 1.0
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for i in range(config.nr_epoch):
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docs = [nlp.make_doc(doc.text) for doc in docs]
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docs, golds = read_data(nlp, paths.train.conllu.open(), paths.train.text.open(),
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max_doc_length=config.max_doc_length, limit=limit,
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oracle_segments=use_oracle_segments,
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raw_text=not use_oracle_segments)
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Xs = list(zip(docs, golds))
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random.shuffle(Xs)
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batches = minibatch_by_words(Xs, size=batch_sizes)
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@ -365,7 +381,12 @@ def main(ud_dir, parses_dir, config, corpus, limit=0, use_gpu=-1, vectors_dir=No
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out_path = parses_dir / corpus / 'epoch-{i}.conllu'.format(i=i)
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with nlp.use_params(optimizer.averages):
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parsed_docs, scores = evaluate(nlp, paths.dev.text, paths.dev.conllu, out_path)
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if use_oracle_segments:
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parsed_docs, scores = evaluate(nlp, paths.dev.conllu,
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paths.dev.conllu, out_path)
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else:
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parsed_docs, scores = evaluate(nlp, paths.dev.text,
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paths.dev.conllu, out_path)
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print_progress(i, losses, scores)
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_render_parses(i, parsed_docs[:50])
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