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6.34 kB
| # coding=utf-8 | |
| # Copyright 2020 The HuggingFace Datasets Authors and the Semeru Lab and SEART research group. | |
| # | |
| # 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. | |
| """TODO: Add a description here.""" | |
| import csv | |
| import glob | |
| import os | |
| import datasets | |
| import numpy as np | |
| # TODO: Add BibTeX citation | |
| # Find for instance the citation on arxiv or on the dataset repo/website | |
| _CITATION = """\ | |
| @InProceedings{huggingface:dataset, | |
| title = {A great new dataset}, | |
| author={huggingface, Inc. | |
| }, | |
| year={2020} | |
| } | |
| """ | |
| # TODO: Add description of the dataset here | |
| # You can copy an official description | |
| _DESCRIPTION = """\ | |
| This new dataset is designed to solve this great NLP task and is crafted with a lot of care. | |
| """ | |
| # TODO: Add a link to an official homepage for the dataset here | |
| _HOMEPAGE = "" | |
| # TODO: Add the licence for the dataset here if you can find it | |
| _LICENSE = "" | |
| # TODO: Add link to the official dataset URLs here | |
| # The HuggingFace dataset library don't host the datasets but only point to the original files | |
| # This can be an arbitrary nested dict/list of URLs (see below in `_split_generators` method) | |
| _DATA_URLs = { | |
| "long": { | |
| "train": "https://huggingface.co/datasets/semeru/completeformer_java_data/resolve/main/long/training_long.csv", | |
| "valid": "https://huggingface.co/datasets/semeru/completeformer_java_data/resolve/main/long/validation_long.csv", | |
| "test": "https://huggingface.co/datasets/semeru/completeformer_java_data/resolve/main/long/test_long.csv", | |
| }, | |
| "medium": { | |
| "train": "https://huggingface.co/datasets/semeru/completeformer_java_data/resolve/main/medium/training_medium.csv", | |
| "valid": "https://huggingface.co/datasets/semeru/completeformer_java_data/resolve/main/medium/validation_medium.csv", | |
| "test": "https://huggingface.co/datasets/semeru/completeformer_java_data/resolve/main/medium/test_medium.csv", | |
| }, | |
| "short": { | |
| "train": "https://huggingface.co/datasets/semeru/completeformer_java_data/resolve/main/short/training_short.csv", | |
| "valid": "https://huggingface.co/datasets/semeru/completeformer_java_data/resolve/main/short/validation_short.csv", | |
| "test": "https://huggingface.co/datasets/semeru/completeformer_java_data/resolve/main/short/test_short.csv", | |
| }, | |
| "mix": { | |
| "train": "https://huggingface.co/datasets/semeru/completeformer_java_data/resolve/main/mix/training_mix.csv", | |
| "valid": "https://huggingface.co/datasets/semeru/completeformer_java_data/resolve/main/mix/validation_mix.csv", | |
| "test": "https://huggingface.co/datasets/semeru/completeformer_java_data/resolve/main/mix/test_mix.csv", | |
| }, | |
| } | |
| # TODO: Name of the dataset usually match the script name with CamelCase instead of snake_case | |
| class CSNCHumanJudgementDataset(datasets.GeneratorBasedBuilder): | |
| """TODO: Short description of my dataset.""" | |
| VERSION = datasets.Version("1.1.0") | |
| BUILDER_CONFIGS = [ | |
| datasets.BuilderConfig( | |
| name="long", | |
| version=VERSION, | |
| description="", | |
| ), | |
| datasets.BuilderConfig( | |
| name="medium", | |
| version=VERSION, | |
| description="", | |
| ), | |
| datasets.BuilderConfig( | |
| name="short", | |
| version=VERSION, | |
| description="", | |
| ), | |
| datasets.BuilderConfig( | |
| name="mix", | |
| version=VERSION, | |
| description="", | |
| ), | |
| ] | |
| DEFAULT_CONFIG_NAME = "long" | |
| def _info(self): | |
| features = datasets.Features( | |
| { | |
| "idx": datasets.Value("int32"), | |
| "input": datasets.Value("string"), | |
| "target": datasets.Value("string"), | |
| } | |
| ) | |
| return datasets.DatasetInfo( | |
| description=_DESCRIPTION, | |
| features=features, | |
| supervised_keys=None, | |
| homepage=_HOMEPAGE, | |
| license=_LICENSE, | |
| citation=_CITATION, | |
| ) | |
| def _split_generators(self, dl_manager): | |
| """Returns SplitGenerators.""" | |
| my_urls = _DATA_URLs[self.config.name] | |
| data_dirs = {} | |
| for k, v in my_urls.items(): | |
| data_dirs[k] = dl_manager.download_and_extract(v) | |
| return [ | |
| datasets.SplitGenerator( | |
| name=datasets.Split.TRAIN, | |
| # These kwargs will be passed to _generate_examples | |
| gen_kwargs={ | |
| "file_path": data_dirs["train"], | |
| }, | |
| ), | |
| datasets.SplitGenerator( | |
| name=datasets.Split.VALIDATION, | |
| # These kwargs will be passed to _generate_examples | |
| gen_kwargs={ | |
| "file_path": data_dirs["valid"], | |
| }, | |
| ), | |
| datasets.SplitGenerator( | |
| name=datasets.Split.TEST, | |
| # These kwargs will be passed to _generate_examples | |
| gen_kwargs={ | |
| "file_path": data_dirs["test"], | |
| }, | |
| ), | |
| ] | |
| def _generate_examples( | |
| self, | |
| file_path, | |
| ): | |
| """Yields examples as (key, example) tuples.""" | |
| # This method handles input defined in _split_generators to yield (key, example) tuples from the dataset. | |
| # The `key` is here for legacy reason (tfds) and is not important in itself. | |
| with open(file_path, encoding="utf-8") as f: | |
| csv_reader = csv.reader(f, quotechar='"', delimiter=",", quoting=csv.QUOTE_ALL, skipinitialspace=True) | |
| next(csv_reader, None) # skip header | |
| for row_id, row in enumerate(csv_reader): | |
| _, idx, input, target = row | |
| yield row_id, { | |
| "idx": idx, | |
| "input": input, | |
| "target": target, | |
| } |