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Create cats_vs_dogs_sample.py

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cats_vs_dogs_sample.py ADDED
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+ # coding=utf-8
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+ # Copyright 2021 The HuggingFace Datasets Authors and the current dataset script contributor.
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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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+ """Sample of the Microsoft Cats vs. Dogs dataset"""
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+
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+ from pathlib import Path
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+ from typing import List
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+
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+ import datasets
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+ from datasets.tasks import ImageClassification
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+
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+
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+ logger = datasets.logging.get_logger(__name__)
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+
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+ _URL = "https://huggingface.co/datasets/hf-internal-testing/cats_vs_dogs_sample/raw/main/cats_and_dogs_sample.zip"
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+
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+ _HOMEPAGE = "https://www.microsoft.com/en-us/download/details.aspx?id=54765"
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+
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+ _DESCRIPTION = "A 50 image sample of microsoft's cats vs. dogs dataset for unit testing."
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+
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+ _CITATION = """\
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+ @Inproceedings (Conference){asirra-a-captcha-that-exploits-interest-aligned-manual-image-categorization,
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+ author = {Elson, Jeremy and Douceur, John (JD) and Howell, Jon and Saul, Jared},
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+ title = {Asirra: A CAPTCHA that Exploits Interest-Aligned Manual Image Categorization},
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+ booktitle = {Proceedings of 14th ACM Conference on Computer and Communications Security (CCS)},
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+ year = {2007},
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+ month = {October},
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+ publisher = {Association for Computing Machinery, Inc.},
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+ url = {https://www.microsoft.com/en-us/research/publication/asirra-a-captcha-that-exploits-interest-aligned-manual-image-categorization/},
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+ edition = {Proceedings of 14th ACM Conference on Computer and Communications Security (CCS)},
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+ }
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+ """
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+
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+
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+ class CatsVsDogs(datasets.GeneratorBasedBuilder):
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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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+ {
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+ "image_file_path": datasets.Value("string"),
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+ "labels": datasets.features.ClassLabel(names=["cat", "dog"]),
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+ }
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+ ),
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+ supervised_keys=("image_file_path", "labels"),
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+ task_templates=[
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+ ImageClassification(
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+ image_file_path_column="image_file_path", label_column="labels", labels=["cat", "dog"]
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+ )
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+ ],
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+ homepage=_HOMEPAGE,
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+ citation=_CITATION,
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+ )
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+
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+ def _split_generators(self, dl_manager: datasets.DownloadManager) -> List[datasets.SplitGenerator]:
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+ images_path = Path(dl_manager.download_and_extract(_URL)) / "PetImagesSample"
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+ return [
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+ datasets.SplitGenerator(name=datasets.Split.TRAIN, gen_kwargs={"images_path": images_path}),
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+ ]
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+
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+ def _generate_examples(self, images_path):
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+ logger.info("generating examples from = %s", images_path)
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+ for i, filepath in enumerate(images_path.glob("**/*.jpg")):
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+ yield str(i), {
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+ "image_file_path": str(filepath),
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+ "labels": filepath.parent.name.lower(),
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+ }