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"""CrossWOZ: A Large-Scale Chinese Cross-Domain Task-Oriented Dialogue Dataset""" |
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import json |
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import os |
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import datasets |
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_CITATION = """\ |
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@article{zhu2020crosswoz, |
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author = {Qi Zhu and Kaili Huang and Zheng Zhang and Xiaoyan Zhu and Minlie Huang}, |
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title = {Cross{WOZ}: A Large-Scale Chinese Cross-Domain Task-Oriented Dialogue Dataset}, |
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journal = {Transactions of the Association for Computational Linguistics}, |
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year = {2020} |
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} |
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""" |
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_DESCRIPTION = """\ |
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CrossWOZ is the first large-scale Chinese Cross-Domain Wizard-of-Oz task-oriented dataset. \ |
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It contains 6K dialogue sessions and 102K utterances for 5 domains, including hotel, \ |
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restaurant, attraction, metro, and taxi. Moreover, the corpus contains rich annotation of \ |
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dialogue states and dialogue acts at both user and system sides. |
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""" |
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_HOMEPAGE = "https://github.com/thu-coai/CrossWOZ" |
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_LICENSE = "Apache License, Version 2.0" |
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class CrossWOZ(datasets.GeneratorBasedBuilder): |
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"""CrossWOZ: A Large-Scale Chinese Cross-Domain Task-Oriented Dialogue Dataset""" |
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VERSION = datasets.Version("1.1.0") |
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def _info(self): |
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features = datasets.Features( |
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{ |
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"gem_id": datasets.Value("string"), |
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"dialog_id": datasets.Value("string"), |
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"sys_id": datasets.Value("int32"), |
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"usr_id": datasets.Value("int32"), |
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"goal": datasets.Sequence((datasets.Value("string"),)), |
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"task description": datasets.Sequence(datasets.Value("string")), |
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"type": datasets.Value("string"), |
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"messages": datasets.Sequence( |
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{ |
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"content": datasets.Value("string"), |
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"role": datasets.Value("string"), |
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"dialog_act": datasets.Sequence((datasets.Value("string"),)), |
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"user_state": datasets.Sequence((datasets.Value("string"),)), |
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"sys_state": { |
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"景点": { |
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"名称": datasets.Value("string"), |
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"门票": datasets.Value("string"), |
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"游玩时间": datasets.Value("string"), |
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"评分": datasets.Value("string"), |
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"周边景点": datasets.Value("string"), |
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"周边餐馆": datasets.Value("string"), |
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"周边酒店": datasets.Value("string"), |
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"selectedResults": datasets.Sequence(datasets.Value("string")) |
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}, |
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"餐馆": { |
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"名称": datasets.Value("string"), |
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"推荐菜": datasets.Value("string"), |
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"人均消费": datasets.Value("string"), |
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"评分": datasets.Value("string"), |
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"周边景点": datasets.Value("string"), |
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"周边餐馆": datasets.Value("string"), |
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"周边酒店": datasets.Value("string"), |
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"selectedResults": datasets.Sequence(datasets.Value("string")) |
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}, |
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"酒店": { |
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"名称": datasets.Value("string"), |
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"酒店类型": datasets.Value("string"), |
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"酒店设施": datasets.Value("string"), |
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"价格": datasets.Value("string"), |
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"评分": datasets.Value("string"), |
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"周边景点": datasets.Value("string"), |
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"周边餐馆": datasets.Value("string"), |
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"周边酒店": datasets.Value("string"), |
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"selectedResults": datasets.Sequence(datasets.Value("string")) |
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}, |
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"地铁": { |
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"出发地": datasets.Value("string"), |
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"目的地": datasets.Value("string"), |
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"selectedResults": datasets.Sequence(datasets.Value("string")) |
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}, |
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"出租": { |
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"出发地": datasets.Value("string"), |
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"目的地": datasets.Value("string"), |
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"selectedResults": datasets.Sequence(datasets.Value("string")) |
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} |
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}, |
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"sys_state_init": { |
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"景点": { |
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"名称": datasets.Value("string"), |
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"门票": datasets.Value("string"), |
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"游玩时间": datasets.Value("string"), |
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"评分": datasets.Value("string"), |
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"周边景点": datasets.Value("string"), |
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"周边餐馆": datasets.Value("string"), |
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"周边酒店": datasets.Value("string"), |
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"selectedResults": datasets.Sequence(datasets.Value("string")) |
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}, |
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"餐馆": { |
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"名称": datasets.Value("string"), |
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"推荐菜": datasets.Value("string"), |
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"人均消费": datasets.Value("string"), |
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"评分": datasets.Value("string"), |
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"周边景点": datasets.Value("string"), |
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"周边餐馆": datasets.Value("string"), |
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"周边酒店": datasets.Value("string"), |
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"selectedResults": datasets.Sequence(datasets.Value("string")) |
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}, |
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"酒店": { |
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"名称": datasets.Value("string"), |
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"酒店类型": datasets.Value("string"), |
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"酒店设施": datasets.Value("string"), |
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"价格": datasets.Value("string"), |
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"评分": datasets.Value("string"), |
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"周边景点": datasets.Value("string"), |
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"周边餐馆": datasets.Value("string"), |
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"周边酒店": datasets.Value("string"), |
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"selectedResults": datasets.Sequence(datasets.Value("string")) |
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}, |
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"地铁": { |
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"出发地": datasets.Value("string"), |
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"目的地": datasets.Value("string"), |
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"selectedResults": datasets.Sequence(datasets.Value("string")) |
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}, |
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"出租": { |
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"出发地": datasets.Value("string"), |
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"目的地": datasets.Value("string"), |
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"selectedResults": datasets.Sequence(datasets.Value("string")) |
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} |
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}, |
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} |
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), |
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"final_goal": datasets.Sequence((datasets.Value("string"),)), |
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} |
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) |
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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=_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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"""Returns SplitGenerators.""" |
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data_dir = dl_manager.download_and_extract("data.zip") |
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return [ |
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datasets.SplitGenerator( |
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name=datasets.Split.TRAIN, |
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gen_kwargs={ |
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"filepath": os.path.join(data_dir, "train.json"), |
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"split": "train", |
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}, |
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), |
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datasets.SplitGenerator( |
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name=datasets.Split.TEST, |
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gen_kwargs={ |
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"filepath": os.path.join(data_dir, "test.json"), |
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"split": "test" |
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}, |
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), |
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datasets.SplitGenerator( |
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name=datasets.Split.VALIDATION, |
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gen_kwargs={ |
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"filepath": os.path.join(data_dir, "val.json"), |
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"split": "dev", |
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}, |
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), |
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datasets.SplitGenerator( |
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name="challenge_CMT", |
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gen_kwargs={ |
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"filepath": os.path.join(data_dir, "test.json"), |
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"split": "challenge_CMT", |
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}, |
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), |
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] |
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def _generate_examples( |
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self, filepath, split |
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): |
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""" Yields examples as (key, example) tuples. """ |
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def empty_sys_state(): |
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return { |
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"景点": { |
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"名称": "", |
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"门票": "", |
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"游玩时间": "", |
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"评分": "", |
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"周边景点": "", |
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"周边餐馆": "", |
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"周边酒店": "", |
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"selectedResults": [] |
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}, |
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"餐馆": { |
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"名称": "", |
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"推荐菜": "", |
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"人均消费": "", |
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"评分": "", |
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"周边景点": "", |
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"周边餐馆": "", |
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"周边酒店": "", |
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"selectedResults": [] |
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}, |
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"酒店": { |
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"名称": "", |
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"酒店类型": "", |
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"酒店设施": "", |
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"价格": "", |
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"评分": "", |
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"周边景点": "", |
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"周边餐馆": "", |
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"周边酒店": "", |
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"selectedResults": [] |
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}, |
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"地铁": { |
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"出发地": "", |
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"目的地": "", |
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"selectedResults": [] |
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}, |
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"出租": { |
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"出发地": "", |
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"目的地": "", |
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"selectedResults": [] |
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} |
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} |
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key = 0 |
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with open(filepath, encoding="utf-8") as f: |
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data = json.load(f) |
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for dialog_id, dialog in data.items(): |
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if split == "challenge_CMT" and dialog["type"] != "不独立多领域+交通": |
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continue |
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messages = [] |
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for turn in dialog["messages"]: |
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if "user_state" not in turn: |
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turn["user_state"] = [] |
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else: |
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turn["user_state"] = list(map(tuple, turn["user_state"])) |
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if "sys_state" not in turn: |
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turn["sys_state"] = empty_sys_state() |
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if "sys_state_init" not in turn: |
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turn["sys_state_init"] = empty_sys_state() |
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messages.append(turn) |
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yield key, { |
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"gem_id": f"GEM-CrossWOZ-{split}-{key}", |
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"dialog_id": dialog_id, |
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"sys_id": dialog["sys-usr"][0], |
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"usr_id": dialog["sys-usr"][1], |
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"goal": list(map(tuple, dialog["goal"])), |
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"task description": dialog["task description"], |
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"type": dialog["type"], |
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"messages": messages, |
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"final_goal": list(map(tuple, dialog["final_goal"])) |
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} |
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key += 1 |
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