4 datasets found
  1. P

    Global Wheat Head 2021 Dataset

    • paperswithcode.com
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    Etienne David; Mario Serouart; Daniel Smith; Simon Madec; Kaaviya Velumani; Shouyang Liu; Xu Wang; Francisco Pinto Espinosa; Shahameh Shafiee; Izzat S. A. Tahir; Hisashi Tsujimoto; Shuhei Nasuda; Bangyou Zheng; Norbert Kichgessner; Helge Aasen; Andreas Hund; Pouria Sadhegi-Tehran; Koichi Nagasawa; Goro Ishikawa; Sébastien Dandrifosse; Alexis Carlier; Benoit Mercatoris; Ken Kuroki; Haozhou Wang; Masanori Ishii; Minhajul A. Badhon; Curtis Pozniak; David Shaner LeBauer; Morten Lilimo; Jesse Poland; Scott Chapman; Benoit de Solan; Frédéric Baret; Ian Stavness; Wei Guo, Global Wheat Head 2021 Dataset [Dataset]. https://paperswithcode.com/dataset/global-wheat-head-2021
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    Authors
    Etienne David; Mario Serouart; Daniel Smith; Simon Madec; Kaaviya Velumani; Shouyang Liu; Xu Wang; Francisco Pinto Espinosa; Shahameh Shafiee; Izzat S. A. Tahir; Hisashi Tsujimoto; Shuhei Nasuda; Bangyou Zheng; Norbert Kichgessner; Helge Aasen; Andreas Hund; Pouria Sadhegi-Tehran; Koichi Nagasawa; Goro Ishikawa; Sébastien Dandrifosse; Alexis Carlier; Benoit Mercatoris; Ken Kuroki; Haozhou Wang; Masanori Ishii; Minhajul A. Badhon; Curtis Pozniak; David Shaner LeBauer; Morten Lilimo; Jesse Poland; Scott Chapman; Benoit de Solan; Frédéric Baret; Ian Stavness; Wei Guo
    Description

    Global WHEAT Dataset 2021 is the extentions of the Global Wheat Dataset 2020. It is the first large-scale dataset for wheat head detection from field optical images. It included a very large range of cultivars from differents continents. Wheat is a staple crop grown all over the world and consequently interest in wheat phenotyping spans the globe. Therefore, it is important that models developed for wheat phenotyping, such as wheat head detection networks, generalize between different growing environments around the world.

    Dataset and official splits can be download here

  2. R

    Global Wheat 2021 Dataset

    • universe.roboflow.com
    zip
    Updated May 16, 2024
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    Institute of Agricultural Sciences (2024). Global Wheat 2021 Dataset [Dataset]. https://universe.roboflow.com/institute-of-agricultural-sciences/global-wheat-2021/model/1
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    zipAvailable download formats
    Dataset updated
    May 16, 2024
    Dataset authored and provided by
    Institute of Agricultural Sciences
    License

    Attribution 4.0 (CC BY 4.0)https://creativecommons.org/licenses/by/4.0/
    License information was derived automatically

    Variables measured
    Wheat Bounding Boxes
    Description

    Global wheat head detection Dataset is the first large-scale dataset for wheat head detection from field optical images. It included a very large range of cultivars from differents continents. Wheat is a staple crop grown all over the world and consequently interest in wheat phenotyping spans the globe. Therefore, it is important that models developed for wheat phenotyping, such as wheat head detection networks, generalize between different growing environments around the world.

    From this first experience, a few avenues for improvements have been identified regarding data size, head diversity, and label reliability. To address these issues, the 2020 dataset has been reexamined, relabeled, and complemented by adding 1722 images from 5 additional countries, allowing for 81,553 additional wheat heads. This is the official version of the Global Wheat Head Dataset presented in David et al. (2021).Labels are included in csv. The dataset is composed of more than 6000 images of 1024x1024 pixels containing 300k+ unique wheat heads, with the corresponding bounding boxes.

    For more info, visit https://www.global-wheat.com/gwhd.html

  3. P

    Global Wheat Dataset

    • paperswithcode.com
    Updated Apr 1, 2025
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    E. David; S. Madec; P. Sadeghi-Tehran; H. Aasen; B. Zheng; S. Liu; N. Kirchgessner; G. Ishikawa; K. Nagasawa; M. A. Badhon; C. Pozniak; B. de Solan; A. Hund; S. C. Chapman; F. Baret; I. Stavness; W. Guo (2025). Global Wheat Dataset [Dataset]. https://paperswithcode.com/dataset/global-wheat
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    Dataset updated
    Apr 1, 2025
    Authors
    E. David; S. Madec; P. Sadeghi-Tehran; H. Aasen; B. Zheng; S. Liu; N. Kirchgessner; G. Ishikawa; K. Nagasawa; M. A. Badhon; C. Pozniak; B. de Solan; A. Hund; S. C. Chapman; F. Baret; I. Stavness; W. Guo
    Description

    Global WHEAT Dataset is the first large-scale dataset for wheat head detection from field optical images. It included a very large range of cultivars from differents continents. Wheat is a staple crop grown all over the world and consequently interest in wheat phenotyping spans the globe. Therefore, it is important that models developed for wheat phenotyping, such as wheat head detection networks, generalize between different growing environments around the world.

  4. O

    Global Wheat (Global Wheat Head Dataset 2020)

    • opendatalab.com
    zip
    Updated Apr 1, 2023
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    University of Queensland (2023). Global Wheat (Global Wheat Head Dataset 2020) [Dataset]. https://opendatalab.com/OpenDataLab/Global_Wheat
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    zip(10403354022 bytes)Available download formats
    Dataset updated
    Apr 1, 2023
    Dataset provided by
    University of Queensland
    University of Tokyo
    Nanjing Agricultural University
    License

    Attribution 4.0 (CC BY 4.0)https://creativecommons.org/licenses/by/4.0/
    License information was derived automatically

    Description

    Global WHEAT Dataset is the first large-scale dataset for wheat head detection from field optical images. It included a very large range of cultivars from differents continents. Wheat is a staple crop grown all over the world and consequently interest in wheat phenotyping spans the globe. Therefore, it is important that models developed for wheat phenotyping, such as wheat head detection networks, generalize between different growing environments around the world.

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Share
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Click to copy link
Link copied
Close
Cite
Etienne David; Mario Serouart; Daniel Smith; Simon Madec; Kaaviya Velumani; Shouyang Liu; Xu Wang; Francisco Pinto Espinosa; Shahameh Shafiee; Izzat S. A. Tahir; Hisashi Tsujimoto; Shuhei Nasuda; Bangyou Zheng; Norbert Kichgessner; Helge Aasen; Andreas Hund; Pouria Sadhegi-Tehran; Koichi Nagasawa; Goro Ishikawa; Sébastien Dandrifosse; Alexis Carlier; Benoit Mercatoris; Ken Kuroki; Haozhou Wang; Masanori Ishii; Minhajul A. Badhon; Curtis Pozniak; David Shaner LeBauer; Morten Lilimo; Jesse Poland; Scott Chapman; Benoit de Solan; Frédéric Baret; Ian Stavness; Wei Guo, Global Wheat Head 2021 Dataset [Dataset]. https://paperswithcode.com/dataset/global-wheat-head-2021

Global Wheat Head 2021 Dataset

Global Wheat Head Dataset 2021

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Authors
Etienne David; Mario Serouart; Daniel Smith; Simon Madec; Kaaviya Velumani; Shouyang Liu; Xu Wang; Francisco Pinto Espinosa; Shahameh Shafiee; Izzat S. A. Tahir; Hisashi Tsujimoto; Shuhei Nasuda; Bangyou Zheng; Norbert Kichgessner; Helge Aasen; Andreas Hund; Pouria Sadhegi-Tehran; Koichi Nagasawa; Goro Ishikawa; Sébastien Dandrifosse; Alexis Carlier; Benoit Mercatoris; Ken Kuroki; Haozhou Wang; Masanori Ishii; Minhajul A. Badhon; Curtis Pozniak; David Shaner LeBauer; Morten Lilimo; Jesse Poland; Scott Chapman; Benoit de Solan; Frédéric Baret; Ian Stavness; Wei Guo
Description

Global WHEAT Dataset 2021 is the extentions of the Global Wheat Dataset 2020. It is the first large-scale dataset for wheat head detection from field optical images. It included a very large range of cultivars from differents continents. Wheat is a staple crop grown all over the world and consequently interest in wheat phenotyping spans the globe. Therefore, it is important that models developed for wheat phenotyping, such as wheat head detection networks, generalize between different growing environments around the world.

Dataset and official splits can be download here

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