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- SDH_16k.py +133 -0
README.md
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task_categories:
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- image-classification
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---
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# Dataset Card for MyoQuant SDH Data
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## Table of Contents
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- [Table of Contents](#table-of-contents)
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- [Dataset Description](#dataset-description)
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- [Dataset Summary](#dataset-summary)
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- [Supported Tasks and Leaderboards](#supported-tasks-and-leaderboards)
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- [Languages](#languages)
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- [Dataset Structure](#dataset-structure)
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- [Data Instances](#data-instances)
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- [Data Fields](#data-fields)
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- [Data Splits](#data-splits)
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- [Dataset Creation](#dataset-creation)
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- [Curation Rationale](#curation-rationale)
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- [Source Data](#source-data)
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- [Annotations](#annotations)
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- [Personal and Sensitive Information](#personal-and-sensitive-information)
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- [Considerations for Using the Data](#considerations-for-using-the-data)
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- [Social Impact of Dataset](#social-impact-of-dataset)
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- [Discussion of Biases](#discussion-of-biases)
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- [Other Known Limitations](#other-known-limitations)
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- [Additional Information](#additional-information)
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- [Dataset Curators](#dataset-curators)
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- [Licensing Information](#licensing-information)
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- [Citation Information](#citation-information)
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- [Contributions](#contributions)
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## Dataset Description
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- **Homepage:**
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- **Repository:**
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- **Paper:**
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- **Leaderboard:**
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- **Point of Contact:**
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### Dataset Summary
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[More Information Needed]
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### Supported Tasks and Leaderboards
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[More Information Needed]
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### Languages
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[More Information Needed]
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## Dataset Structure
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### Data Instances
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[More Information Needed]
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### Data Fields
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[More Information Needed]
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### Data Splits
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[More Information Needed]
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## Dataset Creation
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### Curation Rationale
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[More Information Needed]
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### Source Data
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#### Initial Data Collection and Normalization
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[More Information Needed]
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#### Who are the source language producers?
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[More Information Needed]
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### Annotations
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#### Annotation process
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[More Information Needed]
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#### Who are the annotators?
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[More Information Needed]
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### Personal and Sensitive Information
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[More Information Needed]
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## Considerations for Using the Data
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### Social Impact of Dataset
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[More Information Needed]
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### Discussion of Biases
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[More Information Needed]
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### Other Known Limitations
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[More Information Needed]
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## Additional Information
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### Dataset Curators
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[More Information Needed]
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### Licensing Information
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[More Information Needed]
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### Citation Information
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[More Information Needed]
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### Contributions
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Thanks to [@github-username](https://github.com/<github-username>) for adding this dataset.
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dataset_info:
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features:
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- name: image
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dtype: image
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- name: label
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dtype:
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class_label:
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names:
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0: control
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1: sick
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config_name: SDH_16k
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splits:
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- name: test
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num_bytes: 683067
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num_examples: 3358
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- name: train
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num_bytes: 2466024
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num_examples: 12085
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- name: validation
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num_bytes: 281243
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num_examples: 1344
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download_size: 2257836789
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dataset_size: 3430334
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SDH_16k.py
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# Copyright 2020 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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"""MyoQuant-SDH-Data: The MyoQuant SDH Model Data."""
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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{Meyer,
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title = {MyoQuant SDH Data},
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author={Corentin Meyer},
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year={2022}
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}
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"""
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_NAMES = ["control", "sick"]
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_DESCRIPTION = """\
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This dataset is used to train the SDH model of MyoQuant to detect and quantify anomaly in the mitochondria repartition in SDH stained muscle fiber with myopathy disorders.
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"""
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_HOMEPAGE = "https://huggingface.co/datasets/corentinm7/MyoQuant-SDH-Data"
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_LICENSE = "agpl-3.0"
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_URLS = {
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"SDH_16k": "https://huggingface.co/datasets/corentinm7/MyoQuant-SDH-Data/resolve/main/SDH_16k/SDH_16k.zip"
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}
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_METADATA_URL = {
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"SDH_16k_metadata": "https://huggingface.co/datasets/corentinm7/MyoQuant-SDH-Data/resolve/main/SDH_16k/metadata.jsonl"
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}
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class SDH_16k(datasets.GeneratorBasedBuilder):
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"""This dataset is used to train the SDH model of MyoQuant to detect and quantify anomaly in the mitochondria repartition in SDH stained muscle fiber with myopathy disorders."""
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VERSION = datasets.Version("1.0.0")
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# This is an example of a dataset with multiple configurations.
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# If you don't want/need to define several sub-sets in your dataset,
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# just remove the BUILDER_CONFIG_CLASS and the BUILDER_CONFIGS attributes.
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# If you need to make complex sub-parts in the datasets with configurable options
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# You can create your own builder configuration class to store attribute, inheriting from datasets.BuilderConfig
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# BUILDER_CONFIG_CLASS = MyBuilderConfig
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# You will be able to load one or the other configurations in the following list with
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# data = datasets.load_dataset('my_dataset', 'first_domain')
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# data = datasets.load_dataset('my_dataset', 'second_domain')
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DEFAULT_CONFIG_NAME = "SDH_16k" # It's not mandatory to have a default configuration. Just use one if it make sense.
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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": datasets.Image(),
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"label": datasets.ClassLabel(num_classes=2, names=_NAMES),
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}
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),
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supervised_keys=("image", "label"),
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homepage=_HOMEPAGE,
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citation=_CITATION,
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license=_LICENSE,
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task_templates=[
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datasets.ImageClassification(image_column="image", label_column="label")
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],
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)
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def _split_generators(self, dl_manager):
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archive_path = dl_manager.download(_URLS)
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split_metadata_path = dl_manager.download(_METADATA_URL)
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files_metadata = {}
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with open(split_metadata_path["SDH_16k_metadata"], encoding="utf-8") as f:
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for lines in f.read().splitlines():
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file_json_metdata = json.loads(lines)
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files_metadata.setdefault(file_json_metdata["split"], []).append(
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file_json_metdata
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)
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downloaded_files = dl_manager.download_and_extract(archive_path)
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return [
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datasets.SplitGenerator(
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name=datasets.Split.TRAIN,
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gen_kwargs={
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"download_path": downloaded_files["SDH_16k"],
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"metadata": files_metadata["train"],
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},
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),
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datasets.SplitGenerator(
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name=datasets.Split.VALIDATION,
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gen_kwargs={
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"download_path": downloaded_files["SDH_16k"],
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"metadata": files_metadata["validation"],
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},
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),
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datasets.SplitGenerator(
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name=datasets.Split.TEST,
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gen_kwargs={
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"download_path": downloaded_files["SDH_16k"],
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"metadata": files_metadata["test"],
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},
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),
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]
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def _generate_examples(self, download_path, metadata):
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"""Generate images and labels for splits."""
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for single_metdata in metadata:
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img_path = os.path.join(
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download_path,
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single_metdata["split"],
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single_metdata["label"],
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single_metdata["file_name"],
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)
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yield single_metdata["file_name"], {
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"image": {"path": img_path, "bytes": open(img_path, "rb").read()},
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"label": single_metdata["label"],
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}
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