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"""ted2020_tw_mt""" |
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import csv |
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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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@InProceedings{huggingface:dataset, |
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title = {中文 Aya dataset}, |
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author={Heng-Shiou Sheu |
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}, |
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year={2024} |
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} |
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""" |
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_DESCRIPTION = """\ |
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是一個精心策劃的資料集,源自 CohereForAI 的綜合 Aya 集合,特別關注繁體中文資料。 |
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此資料集聚合了 CohereForAI/aya_collection、CohereForAI/aya_dataset 和 CohereForAI/aya_evaluation_suite 中的內容, |
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過濾掉除中文內容之外的所有內容,包括繁體中文與簡體中文。 |
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""" |
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_Subset_names = [ |
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'default' |
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] |
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_HOMEPAGE = "https://huggingface.co/Heng666" |
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_LICENSE = "apache-2.0" |
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_URLS = { |
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"aya_collection": "https://huggingface.co/datasets/CohereForAI/aya_collection", |
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"aya_dataset": "https://huggingface.co/datasets/CohereForAI/aya_dataset", |
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"evaluation_suite": "https://huggingface.co/datasets/CohereForAI/aya_evaluation_suite" |
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} |
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class ChineseAyaDatasetConfig(datasets.BuilderConfig): |
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"""BuilderConfig for Chinese Aya""" |
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def __init__(self, subset, **kwargs): |
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super().__init__(**kwargs) |
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""" |
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Args: |
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subset: subset, you want to load |
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**kwargs: keyword arguments forwarded to super. |
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""" |
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self.subset = subset |
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class ChineseAyaDatasetDataset(datasets.GeneratorBasedBuilder): |
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"""TODO: Short description of my dataset.""" |
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VERSION = datasets.Version("1.0.0") |
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BUILDER_CONFIG_CLASS = ChineseAyaDatasetConfig |
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BUILDER_CONFIGS = [ |
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ChineseAyaDatasetConfig( |
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name=subset, |
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description=_DESCRIPTION, |
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subset=subset |
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) |
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for subset in _Subset_names |
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] |
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def _info(self): |
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return datasets.DatasetInfo( |
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description=_DESCRIPTION, |
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features=datasets.Features({ |
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"inputs": datasets.Value("string"), |
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"targets": datasets.Value("string"), |
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"language": datasets.Value("string"), |
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"language_code": datasets.Value("string"), |
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"annotation_type": datasets.Value("string"), |
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"user_id": datasets.Value("string"), |
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}), |
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homepage=_HOMEPAGE, |
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citation=_CITATION, |
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license=_LICENSE |
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) |
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def _split_generators(self, dl_manager): |
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subset = self.config.subset |
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files = {} |
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train_path = os.path.join("train/", f"CohereForAI-{subset}-train.csv") |
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files["train"] = train_path |
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test_path = os.path.join("test", f"CohereForAI-{subset}-test.csv") |
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files["test"] = test_path |
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validation_path = os.path.join("validation", f"CohereForAI-{subset}-validation.csv") |
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files["validation"] = validation_path |
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try: |
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data_dir = dl_manager.download_and_extract(files) |
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except: |
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files.pop("test") |
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files.pop("validation") |
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data_dir = dl_manager.download_and_extract(files) |
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output = [] |
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if "train" in files: |
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train = datasets.SplitGenerator( |
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name=datasets.Split.TRAIN, |
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gen_kwargs={ |
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"filepath": data_dir["train"] |
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} |
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) |
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output.append(train) |
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if "test" in files: |
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test = datasets.SplitGenerator( |
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name=datasets.Split.TEST, |
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gen_kwargs={ |
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"filepath": data_dir["test"] |
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} |
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) |
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output.append(test) |
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if "validation" in files: |
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validation = datasets.SplitGenerator( |
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name=datasets.Split.VALIDATION, |
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gen_kwargs={ |
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"filepath": data_dir["validation"] |
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} |
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) |
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output.append(validation) |
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return output |
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def _generate_examples(self, filepath): |
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"""Yields examples.""" |
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with open(filepath, encoding="utf-8") as f: |
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reader = csv.reader(f, delimiter=",", quotechar='"') |
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for id_, row in enumerate(reader): |
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if id_ == 0: |
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continue |
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yield id_, { |
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"inputs": row[0], |
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"targets": row[1], |
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"language": row[2], |
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"language_code": row[3], |
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"annotation_type": row[4], |
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"user_id": row[5], |
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} |