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Perceptual Similarity Dataset
Perceptual Similarity is a dataset about human perceptual similarity judgment. This dataset systematically evaluates deep features of different architectures and tasks, and finds that perceptual similarity is an emerging property shared by deep visual representations. The dataset includes:
- Learning Perceptual Image Patch Similarity Metric (LPIPS)
- Berkeley-Adobe Perceptual Patch Similarity Dataset (BAPPS)
Sample Data

Citation
@inproceedings{zhang2018perceptual,
title={The Unreasonable Effectiveness of Deep Features as a Perceptual Metric},
author={Zhang, Richard and Isola, Phillip and Efros, Alexei A and Shechtman, Eli and Wang, Oliver},
booktitle={CVPR},
year={2018}
}
Perceptual_Similarity.torrent
Seeding 1Downloading 0Completed 687Total Downloads 788
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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