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Weed Segmentation France

This dataset comprises real RGB images of weeds in agricultural fields at Montoldre, France, specifically within maize and bean crop areas. Captured using a robot platform during 2019 and 2021, the images were collected under natural field conditions to support semantic segmentation research for weed detection in crop environments. The dataset contains 985 images with pixel-level mask annotations.

This dataset is indexed on https://project-agml.github.io/ as part of the AgML python library.

Citation

@article{bertoglio2023comparative,
  title={A comparative study of Fourier transform and CycleGAN as domain adaptation techniques for weed segmentation},
  author={Bertoglio, Riccardo and Mazzucchelli, Alessio and Catalano, Nico and Matteucci, Matteo},
  journal={Smart Agricultural Technology},
  volume={4},
  pages={100188},
  year={2023},
  publisher={Elsevier}
}

This dataset was reformatted from its original format to match HuggingFace standards.

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