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<h1 align="center"> <br> <img src=https://user-images.githubusercontent.com/54723897/113879941-4e1af480-97bb-11eb-83f3-e0ec8772b7c4.gif width=400px> <br> </h1> <h2 align="center">A global dataset for cloud and cloud shadow semantic understanding</h2> <p align="center"> • <a href="#why-we-need-another-cloud-detection-dataset">Introduction</a> &nbsp;• <a href="#characteristics">Instructions</a> &nbsp;• <a href="#citation">Citation</a> &nbsp;• <a href="#credits">Credits</a> </p>

Introduction

In order to cover EO benchmarking requirements, we join to each IP the results of eight of the most popular CD algorithms:

Instructions

  1. Go to the model folder.
  2. Follow the instructions.

Citation

@article{aybar2022cloudsen12,
  title={CloudSEN12-a global dataset for semantic understanding of cloud and cloud shadow in Sentinel-2},
  author={Aybar, Cesar and Ysuhuaylas, Luis and Loja, Jhomira and Gonzales, Karen and Herrera, Fernando and Yali, Roy and Flores, Angie and Diaz, Lissette and Cuenca, Nicole and Espinoza, Wendy and Prudencio, Fernando and Llactayo, Valeria and Montero, David and Sudmanns, Martin and Tiede, Dirk and Mateo-García, Gonzalo and Gómez-Chova, Luis},
  year={2022},
  publisher={EarthArXiv}
}

Acknowledgment

This project gratefully acknowledges:

<img src=https://user-images.githubusercontent.com/16768318/153642319-9bb91ef6-a400-47ff-a080-9b4406390153.svg width=20%>

for computing resources