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MinneApple Apple Detection Dataset
Date
4 years ago
Size
3.82 GB
Publish URL
Paper URL
License
Other

MinneApple is a benchmark dataset for apple detection and segmentation. The dataset annotates each object instance using polygonal masks to aid accurate object detection, localization, and segmentation. In addition, the dataset provides patch-based clustering of fruit counts. The dataset contains over 410,000 annotated object instances in 1,000 images.
Citation
@misc{hani2019minneapple,
title={MinneApple: A Benchmark Dataset for Apple Detection and Segmentation},
author={Nicolai Häni and Pravakar Roy and Volkan Isler}
year={2019},
eprint={1909.06441},
archivePrefix={arXiv},
primaryClass={cs.CV}
}
MinneApple.torrent
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This dataset is contributed by community users and is intended for educational and informational purposes only. If any content involves copyright infringement, please contact us at support@hyper.ai for prompt review and removal.
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