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# Ultralytics YOLO π, AGPL-3.0 license | |
# COCO 2017 dataset http://cocodataset.org by Microsoft | |
# Example usage: yolo train data=coco-pose.yaml | |
# parent | |
# βββ ultralytics | |
# βββ datasets | |
# βββ coco-pose β downloads here (20.1 GB) | |
# Train/val/test sets as 1) dir: path/to/imgs, 2) file: path/to/imgs.txt, or 3) list: [path/to/imgs1, path/to/imgs2, ..] | |
path: ../datasets/coco-pose # dataset root dir | |
train: train2017.txt # train images (relative to 'path') 118287 images | |
val: val2017.txt # val images (relative to 'path') 5000 images | |
test: test-dev2017.txt # 20288 of 40670 images, submit to https://competitions.codalab.org/competitions/20794 | |
# Keypoints | |
kpt_shape: [17, 3] # number of keypoints, number of dims (2 for x,y or 3 for x,y,visible) | |
flip_idx: [0, 2, 1, 4, 3, 6, 5, 8, 7, 10, 9, 12, 11, 14, 13, 16, 15] | |
# Classes | |
names: | |
0: person | |
# Download script/URL (optional) | |
download: | | |
from ultralytics.yolo.utils.downloads import download | |
from pathlib import Path | |
# Download labels | |
dir = Path(yaml['path']) # dataset root dir | |
url = 'https://github.com/ultralytics/yolov5/releases/download/v1.0/' | |
urls = [url + 'coco2017labels-pose.zip'] # labels | |
download(urls, dir=dir.parent) | |
# Download data | |
urls = ['http://images.cocodataset.org/zips/train2017.zip', # 19G, 118k images | |
'http://images.cocodataset.org/zips/val2017.zip', # 1G, 5k images | |
'http://images.cocodataset.org/zips/test2017.zip'] # 7G, 41k images (optional) | |
download(urls, dir=dir / 'images', threads=3) | |