Vadzim Kashko commited on
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6fb443d
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1 Parent(s): 571ef41

refactor: all data

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  1. Masks_10.csv β†’ data/face_masks.csv +0 -0
  2. data/images.tar.gz +3 -0
  3. {img β†’ data/images}/000131f21f--5ff282eb6341936754261bc0/1.jpg +0 -0
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  42. {img β†’ data/images}/000131f21f--601da231b63c2f51d52483a7/4.jpg +0 -0
  43. face_masks.py +117 -0
Masks_10.csv β†’ data/face_masks.csv RENAMED
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+ version https://git-lfs.github.com/spec/v1
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+ oid sha256:4ff240d4358c76c6bce20867ef54dfef1c5fe57bef7d42b3215f8f46124b29a1
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face_masks.py ADDED
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+ import datasets
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+ import pandas as pd
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+
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+ _CITATION = """\
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+ @InProceedings{huggingface:dataset,
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+ title = {selfies_and_id},
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+ author = {TrainingDataPro},
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+ year = {2023}
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+ }
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+ """
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+
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+ _DESCRIPTION = """\
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+ 4083 sets, which includes 2 photos of a person from his documents and
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+ 13 selfies. 571 sets of Hispanics and 3512 sets of Caucasians.
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+ Photo documents contains only a photo of a person.
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+ All personal information from the document is hidden.
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+ """
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+ _NAME = 'selfies_and_id'
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+
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+ _HOMEPAGE = f"https://huggingface.co/datasets/TrainingDataPro/{_NAME}"
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+
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+ _LICENSE = "cc-by-nc-nd-4.0"
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+
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+ _DATA = f"https://huggingface.co/datasets/TrainingDataPro/{_NAME}/resolve/main/data/"
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+
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+
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+ class SelfiesAndId(datasets.GeneratorBasedBuilder):
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+ """Small sample of image-text pairs"""
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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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+ 'id_1': datasets.Image(),
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+ 'id_2': datasets.Image(),
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+ 'selfie_1': datasets.Image(),
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+ 'selfie_2': datasets.Image(),
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+ 'selfie_3': datasets.Image(),
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+ 'selfie_4': datasets.Image(),
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+ 'selfie_5': datasets.Image(),
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+ 'selfie_6': datasets.Image(),
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+ 'selfie_7': datasets.Image(),
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+ 'selfie_8': datasets.Image(),
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+ 'selfie_9': datasets.Image(),
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+ 'selfie_10': datasets.Image(),
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+ 'selfie_11': datasets.Image(),
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+ 'selfie_12': datasets.Image(),
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+ 'selfie_13': datasets.Image(),
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+ 'user_id': datasets.Value('string'),
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+ 'set_id': datasets.Value('string'),
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+ 'user_race': datasets.Value('string'),
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+ 'name': datasets.Value('string'),
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+ 'age': datasets.Value('int8'),
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+ 'country': datasets.Value('string'),
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+ 'gender': datasets.Value('string')
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+ }),
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+ supervised_keys=None,
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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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+
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+ def _split_generators(self, dl_manager):
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+ images = dl_manager.download(f"{_DATA}images.tar.gz")
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+ annotations = dl_manager.download(f"{_DATA}{_NAME}.csv")
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+ images = dl_manager.iter_archive(images)
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+ return [
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+ datasets.SplitGenerator(name=datasets.Split.TRAIN,
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+ gen_kwargs={
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+ "images": images,
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+ 'annotations': annotations
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+ }),
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+ ]
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+
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+ def _generate_examples(self, images, annotations):
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+ annotations_df = pd.read_csv(annotations, sep=';')
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+ images_data = pd.DataFrame(columns=['URL', 'Bytes'])
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+ for idx, (image_path, image) in enumerate(images):
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+ images_data.loc[idx] = {'URL': image_path, 'Bytes': image.read()}
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+
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+ annotations_df = pd.merge(annotations_df,
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+ images_data,
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+ how='left',
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+ on=['URL'])
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+ for idx, worker_id in enumerate(pd.unique(annotations_df['UserId'])):
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+ annotation = annotations_df.loc[annotations_df['UserId'] ==
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+ worker_id]
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+ annotation = annotation.sort_values(['FName'])
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+ data = {
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+ row[5].lower(): {
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+ 'path': row[6],
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+ 'bytes': row[10]
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+ } for row in annotation.itertuples()
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+ }
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+
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+ age = annotation.loc[annotation['FName'] ==
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+ 'ID_1']['Age'].values[0]
98
+ country = annotation.loc[annotation['FName'] ==
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+ 'ID_1']['Country'].values[0]
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+ gender = annotation.loc[annotation['FName'] ==
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+ 'ID_1']['Gender'].values[0]
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+ set_id = annotation.loc[annotation['FName'] ==
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+ 'ID_1']['SetId'].values[0]
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+ user_race = annotation.loc[annotation['FName'] ==
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+ 'ID_1']['UserRace'].values[0]
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+ name = annotation.loc[annotation['FName'] ==
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+ 'ID_1']['Name'].values[0]
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+
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+ data['user_id'] = worker_id
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+ data['age'] = age
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+ data['country'] = country
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+ data['gender'] = gender
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+ data['set_id'] = set_id
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+ data['user_race'] = user_race
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+ data['name'] = name
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+
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+ yield idx, data