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drcd.py
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# Copyright (c) 2020 PaddlePaddle Authors. All Rights Reserved.
#
# Licensed under the Apache License, Version 2.0 (the "License");
# you may not use this file except in compliance with the License.
# You may obtain a copy of the License at
#
# http://www.apache.org/licenses/LICENSE-2.0
#
# Unless required by applicable law or agreed to in writing, software
# distributed under the License is distributed on an "AS IS" BASIS,
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
# See the License for the specific language governing permissions and
# limitations under the License.
import collections
import json
import os
from paddle.dataset.common import md5file
from paddle.utils.download import get_path_from_url
from ..utils.env import DATA_HOME
from .dataset import DatasetBuilder
__all__ = ["DRCD"]
class DRCD(DatasetBuilder):
"""
Delta Reading Comprehension Dataset is an open domain traditional Chinese
machine reading comprehension (MRC) dataset. The dataset contains 10,014
paragraphs from 2,108 Wikipedia articles and 30,000+ questions generated
by annotators.
"""
META_INFO = collections.namedtuple("META_INFO", ("file", "md5", "URL"))
SPLITS = {
"train": META_INFO(
os.path.join("DRCD_training.json"),
"bbeefc8ad7585ea3e4fef8c677e7643e",
"https://bj.bcebos.com/paddlenlp/datasets/DRCD/DRCD_training.json",
),
"dev": META_INFO(
os.path.join("DRCD_dev.json"),
"42c2f2bca84fc36cf65a86563b0540e6",
"https://bj.bcebos.com/paddlenlp/datasets/DRCD/DRCD_dev.json",
),
"test": META_INFO(
os.path.join("DRCD_test.json"),
"e36a295c1cb8c6b9fb28015907a42d9e",
"https://bj.bcebos.com/paddlenlp/datasets/DRCD/DRCD_test.json",
),
}
def _get_data(self, mode, **kwargs):
default_root = os.path.join(DATA_HOME, self.__class__.__name__)
filename, data_hash, URL = self.SPLITS[mode]
fullname = os.path.join(default_root, filename)
if not os.path.exists(fullname) or (data_hash and not md5file(fullname) == data_hash):
get_path_from_url(URL, default_root)
return fullname
def _read(self, filename, *args):
with open(filename, "r", encoding="utf8") as f:
input_data = json.load(f)["data"]
for entry in input_data:
title = entry.get("title", "").strip()
for paragraph in entry["paragraphs"]:
context = paragraph["context"].strip()
for qa in paragraph["qas"]:
qas_id = qa["id"]
question = qa["question"].strip()
answer_starts = [answer["answer_start"] for answer in qa.get("answers", [])]
answers = [answer["text"].strip() for answer in qa.get("answers", [])]
yield {
"id": qas_id,
"title": title,
"context": context,
"question": question,
"answers": answers,
"answer_starts": answer_starts,
}