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# Copyright (c) 2016 PaddlePaddle Authors. All Rights Reserved
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#
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# Licensed under the Apache License, Version 2.0 (the "License");
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# you may not use this file except in compliance with the License.
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# You may obtain a copy of the License at
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#
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# http://www.apache.org/licenses/LICENSE-2.0
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#
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# Unless required by applicable law or agreed to in writing, software
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# distributed under the License is distributed on an "AS IS" BASIS,
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# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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# See the License for the specific language governing permissions and
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# limitations under the License.
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"""
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wmt14 dataset
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"""
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import paddle.v2.dataset.common
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import tarfile
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import os.path
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import itertools
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__all__ = ['train', 'test', 'build_dict']
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URL_DEV_TEST = 'http://www-lium.univ-lemans.fr/~schwenk/cslm_joint_paper/data/dev+test.tgz'
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MD5_DEV_TEST = '7d7897317ddd8ba0ae5c5fa7248d3ff5'
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URL_TRAIN = 'http://localhost:8000/train.tgz'
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MD5_TRAIN = '72de99da2830ea5a3a2c4eb36092bbc7'
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def word_count(f, word_freq=None):
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add = paddle.v2.dataset.common.dict_add
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if word_freq == None:
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word_freq = {}
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for l in f:
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for w in l.strip().split():
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add(word_freq, w)
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add(word_freq, '<s>')
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add(word_freq, '<e>')
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return word_freq
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def get_word_dix(word_freq):
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TYPO_FREQ = 50
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word_freq = filter(lambda x: x[1] > TYPO_FREQ, word_freq.items())
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word_freq_sorted = sorted(word_freq, key=lambda x: (-x[1], x[0]))
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words, _ = list(zip(*word_freq_sorted))
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word_idx = dict(zip(words, xrange(len(words))))
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word_idx['<unk>'] = len(words)
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return word_idx
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def get_word_freq(train, dev):
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word_freq = word_count(train, word_count(dev))
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if '<unk>' in word_freq:
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# remove <unk> for now, since we will set it as last index
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del word_freq['<unk>']
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return word_freq
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def build_dict():
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base_dir = './wmt14-data'
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train_en_filename = base_dir + '/train/train.en'
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train_fr_filename = base_dir + '/train/train.fr'
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dev_en_filename = base_dir + '/dev/ntst1213.en'
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dev_fr_filename = base_dir + '/dev/ntst1213.fr'
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if not os.path.exists(train_en_filename) or not os.path.exists(
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train_fr_filename):
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with tarfile.open(
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paddle.v2.dataset.common.download(URL_TRAIN, 'wmt14',
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MD5_TRAIN)) as tf:
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tf.extractall(base_dir)
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if not os.path.exists(dev_en_filename) or not os.path.exists(
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dev_fr_filename):
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with tarfile.open(
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paddle.v2.dataset.common.download(URL_DEV_TEST, 'wmt14',
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MD5_DEV_TEST)) as tf:
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tf.extractall(base_dir)
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f_en = open(train_en_filename)
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f_fr = open(train_fr_filename)
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f_en_dev = open(dev_en_filename)
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f_fr_dev = open(dev_fr_filename)
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word_freq_en = get_word_freq(f_en, f_en_dev)
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word_freq_fr = get_word_freq(f_fr, f_fr_dev)
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f_en.close()
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f_fr.close()
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f_en_dev.close()
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f_fr_dev.close()
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return get_word_dix(word_freq_en), get_word_dix(word_freq_fr)
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def reader_creator(directory, path_en, path_fr, URL, MD5, dict_en, dict_fr):
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def reader():
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if not os.path.exists(path_en) or not os.path.exists(path_fr):
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with tarfile.open(
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paddle.v2.dataset.common.download(URL, 'wmt14', MD5)) as tf:
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tf.extractall(directory)
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f_en = open(path_en)
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f_fr = open(path_fr)
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UNK_en = dict_en['<unk>']
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UNK_fr = dict_fr['<unk>']
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for en, fr in itertools.izip(f_en, f_fr):
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src_ids = [dict_en.get(w, UNK_en) for w in en.strip().split()]
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tar_ids = [
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dict_fr.get(w, UNK_fr)
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for w in ['<s>'] + fr.strip().split() + ['<e>']
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]
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# remove sequence whose length > 80 in training mode
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if len(src_ids) == 0 or len(tar_ids) <= 1 or len(
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src_ids) > 80 or len(tar_ids) > 80:
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continue
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yield src_ids, tar_ids[:-1], tar_ids[1:]
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f_en.close()
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f_fr.close()
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return reader
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def train(dict_en, dict_fr):
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directory = './wmt14-data'
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return reader_creator(directory, directory + '/train/train.en',
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directory + '/train/train.fr', URL_TRAIN, MD5_TRAIN,
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dict_en, dict_fr)
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def test(dict_en, dict_fr):
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directory = './wmt14-data'
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return reader_creator(directory, directory + '/dev/ntst1213.en',
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directory + '/dev/ntst1213.fr', URL_DEV_TEST,
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MD5_DEV_TEST, dict_en, dict_fr)
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