Datasets:
				
			
			
	
			
			
	
		
		import: copybara import of the project
Browse filesProject import generated by Copybara.
GitOrigin-RevId: bc26ddfdecf9cfa16a123c254adfe31b2111b4ee
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- coda.py +90 -0
    	
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        coda.py
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            # Copyright 2021 Cory Paik. All Rights Reserved.
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            #
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            # Licensed under the Apache License, Version 2.0 (the 'License');
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            # you may not use this file except in compliance with the License.
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            # You may obtain a copy of the License at
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            #
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            #     http://www.apache.org/licenses/LICENSE-2.0
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            #
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            # Unless required by applicable law or agreed to in writing, software
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            # distributed under the License is distributed on an 'AS IS' BASIS,
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            # WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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            # See the License for the specific language governing permissions and
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            # limitations under the License.
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            # ==============================================================================
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            """ The Color Dataset (CoDa)
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             TODO
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            """
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            import json
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            import datasets
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            _CITATION = """\
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            """
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            _DESCRIPTION = """\
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            """
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            _HOMEPAGE = 'https://github.com/nala-cub/coda'
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            _LICENSE = 'Apache 2.0'
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            _URL = 'https://huggingface.co/datasets/corypaik/coda/resolve/main/data'
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            _URLs = {
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                'default': {
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                    'train': f'{_URL}/default_train.jsonl',
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                    'validation': f'{_URL}/default_validation.jsonl',
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                    'test': f'{_URL}/default_test.jsonl',
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                }
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            }
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            class Coda(datasets.GeneratorBasedBuilder):
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              VERSION = datasets.Version('1.0.0')
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              # TODO(corypaik): add object and annotation configs.
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              def _info(self):
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                features = datasets.Features({
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                    'class_id':
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                        datasets.Value('string'),
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                    'display_name':
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                        datasets.Value('string'),
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                    'ngram':
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                        datasets.Value('string'),
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                    'label':
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                        datasets.Sequence(datasets.Value('float')),
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                    'object_group':
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                        datasets.ClassLabel(names=('Single', 'Multi', 'Any')),
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                    'text':
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                        datasets.Value('string'),
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                    'template_group':
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                        datasets.ClassLabel(names=('clip-imagenet', 'text-masked')),
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                    'template_idx':
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                        datasets.Value('int32')
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                })
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                return datasets.DatasetInfo(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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              def _split_generators(self, dl_manager):
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                """ Returns SplitGenerators."""
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                files = dl_manager.download_and_extract(_URLs[self.config.name])
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                return [
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                    datasets.SplitGenerator(datasets.Split.TRAIN,
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                                            gen_kwargs={'path': files['train']}),
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                    datasets.SplitGenerator(datasets.Split.VALIDATION,
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                                            gen_kwargs={'path': files['validation']}),
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                    datasets.SplitGenerator(datasets.Split.TEST,
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                                            gen_kwargs={'path': files['test']}),
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                ]
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              def _generate_examples(self, path):
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                with open(path, 'r') as f:
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                  for _id, line in enumerate(f.readlines()):
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                    yield _id, json.loads(line)
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