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import json |
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import re |
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import datasets |
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from .bigbiohub import text_features |
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from .bigbiohub import BigBioConfig |
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from .bigbiohub import Tasks |
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_DATASETNAME = "meddialog" |
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_DISPLAYNAME = "MedDialog" |
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_LANGUAGES = ['English', 'Chinese'] |
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_PUBMED = False |
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_LOCAL = False |
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_CITATION = """ |
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@article{DBLP:journals/corr/abs-2004-03329, |
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author = {Shu Chen and |
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Zeqian Ju and |
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Xiangyu Dong and |
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Hongchao Fang and |
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Sicheng Wang and |
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Yue Yang and |
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Jiaqi Zeng and |
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Ruisi Zhang and |
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Ruoyu Zhang and |
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Meng Zhou and |
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Penghui Zhu and |
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Pengtao Xie}, |
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title = {MedDialog: {A} Large-scale Medical Dialogue Dataset}, |
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journal = {CoRR}, |
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volume = {abs/2004.03329}, |
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year = {2020}, |
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url = {https://arxiv.org/abs/2004.03329}, |
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eprinttype = {arXiv}, |
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eprint = {2004.03329}, |
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biburl = {https://dblp.org/rec/journals/corr/abs-2004-03329.bib}, |
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bibsource = {dblp computer science bibliography, https://dblp.org} |
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} |
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""" |
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_DESCRIPTION = """ |
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The MedDialog dataset (English) contains conversations (in English) between doctors and patients.\ |
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It has 0.26 million dialogues. The data is continuously growing and more dialogues will be added. \ |
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The raw dialogues are from healthcaremagic.com and icliniq.com.\ |
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All copyrights of the data belong to healthcaremagic.com and icliniq.com. |
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""" |
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_HOMEPAGE = "https://github.com/UCSD-AI4H/Medical-Dialogue-System" |
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_LICENSE = 'License information unavailable' |
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_URLs = { |
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"en": { |
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"train": "https://drive.google.com/file/d/1ria4E6IdTIPsikL4Glm3uy1tFKJKw0W8/view?usp=sharing", |
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"validation": "https://drive.google.com/file/d/1KAZneuwdfEVQQM6euCX4pMDP-9DQpiB5/view?usp=sharing", |
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"test": "https://drive.google.com/file/d/10izqL71kcgnteYsf87Vh6j_mZ8sZM2Rc/view?usp=sharing", |
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}, |
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"zh": { |
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"train": "https://drive.google.com/file/d/1AaDJoHaiHAwEZwtskRH8oL1UP4FRgmgx/view?usp=sharing", |
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"validation": "https://drive.google.com/file/d/1TvfZCmQqP1kURIfEinOcj5VOPelTuGwI/view?usp=sharing", |
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"test": "https://drive.google.com/file/d/1pmmG95Yl6mMXRXDDSRb9-bYTxOE7ank5/view?usp=sharing", |
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}, |
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} |
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_SUPPORTED_TASKS = [Tasks.TEXT_CLASSIFICATION] |
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_SOURCE_VERSION = "1.0.0" |
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_BIGBIO_VERSION = "1.0.0" |
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class MedDialog(datasets.GeneratorBasedBuilder): |
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"""MedDialog: Large-scale Medical Dialogue Datasets in English and Chinese.""" |
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DEFAULT_CONFIG_NAME = "meddialog_en_source" |
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SOURCE_VERSION = datasets.Version(_SOURCE_VERSION) |
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BIGBIO_VERSION = datasets.Version(_BIGBIO_VERSION) |
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BUILDER_CONFIGS = [ |
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BigBioConfig( |
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name="meddialog_en_source", |
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version=SOURCE_VERSION, |
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description="MedDialog source schema", |
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schema="source", |
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subset_id="meddialog_en", |
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), |
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BigBioConfig( |
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name="meddialog_zh_source", |
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version=SOURCE_VERSION, |
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description="MedDialog source schema", |
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schema="source", |
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subset_id="meddialog_zh", |
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), |
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BigBioConfig( |
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name="meddialog_en_bigbio_text", |
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version=BIGBIO_VERSION, |
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description="MedDialog simplified BigBio schema", |
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schema="bigbio_text", |
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subset_id="meddialog_en", |
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), |
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BigBioConfig( |
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name="meddialog_zh_bigbio_text", |
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version=BIGBIO_VERSION, |
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description="MedDialog simplified BigBio schema", |
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schema="bigbio_text", |
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subset_id="meddialog_zh", |
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), |
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] |
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def _get_gdrive_url(self, url): |
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"""Converts URL from google drive shareable link to format used by dl_manager.""" |
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fileid = re.match("https://drive\.google\.com/file/d/(.+)/view\?", url).group(1) |
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return f"https://drive.google.com/uc?id={fileid}" |
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def _info(self): |
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lang = self.config.name.split("_")[1] |
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if self.config.schema == "source": |
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if lang == "en": |
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features = datasets.Features( |
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{ |
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"description": datasets.Value("string"), |
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"utterances": datasets.Sequence( |
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{ |
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"speaker": datasets.ClassLabel( |
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names=["patient", "doctor"] |
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), |
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"utterance": datasets.Value("string"), |
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} |
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), |
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} |
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) |
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elif lang == "zh": |
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features = datasets.Features( |
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{ |
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"utterances": datasets.Sequence( |
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{ |
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"speaker": datasets.ClassLabel(names=["病人", "医生"]), |
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"utterance": datasets.Value("string"), |
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} |
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), |
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} |
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) |
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elif self.config.schema == "bigbio_text": |
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features = text_features |
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return datasets.DatasetInfo( |
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description=_DESCRIPTION, |
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features=features, |
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supervised_keys=None, |
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homepage=_HOMEPAGE, |
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license=str(_LICENSE), |
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citation=_CITATION, |
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) |
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def _split_generators(self, dl_manager): |
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lang = self.config.name.split("_")[1] |
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my_urls = { |
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split: self._get_gdrive_url(url) for split, url in _URLs[lang].items() |
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} |
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dl_dir = dl_manager.download_and_extract(my_urls) |
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return [ |
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datasets.SplitGenerator( |
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name=split, |
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gen_kwargs={"filepath": dl_dir[split], "split": split, "lang": lang}, |
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) |
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for split in _URLs[lang] |
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] |
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def _generate_examples(self, filepath, split, lang): |
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with open(filepath, "r") as f: |
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data = json.load(f) |
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delimiter = ":" if lang == "zh" else ":" |
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document_id = f"{lang}_{split}" |
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for i, d in enumerate(data): |
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out_utterances = [] |
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utterances = d["utterances"] if lang == "en" else d |
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for j, utt in enumerate(utterances): |
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elements = utt.strip().split(delimiter) |
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speaker = elements[0] |
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text = delimiter.join(elements[1:]).strip() |
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if self.config.schema == "bigbio_text": |
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id = f"{document_id}_{i}_{j}" |
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yield id, { |
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"id": id, |
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"document_id": document_id, |
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"text": text, |
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"labels": [speaker], |
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} |
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else: |
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out_utterances.append({"speaker": speaker, "utterance": text}) |
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if self.config.schema == "source": |
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id = f"{document_id}_{i}" |
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if lang == "en": |
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yield id, { |
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"description": d["description"], |
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"utterances": out_utterances, |
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} |
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else: |
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yield id, { |
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"utterances": out_utterances, |
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} |
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