Global Wheat Head Detection (GWHD) Dataset: A Large and Diverse Dataset of High-Resolution RGB-Labelled Images to Develop and Benchmark Wheat Head Detection Methods

计算机科学 人工智能 标杆管理 主管(地质) 水准点(测量) RGB颜色模型 元数据 任务(项目管理) 模式识别(心理学) 计算机视觉 地理 地图学 生物 工程类 业务 古生物学 操作系统 营销 系统工程
作者
Étienne David,Simon Madec,Pouria Sadeghi‐Tehran,Helge Aasen,Bangyou Zheng,Shouyang Liu,Norbert Kirchgeßner,Goro Ishikawa,Koichi Nagasawa,Minhajul Arifin Badhon,Curtis Pozniak,Benoît de Solan,Andreas Hund,Scott Chapman,Frédéric Baret,Ian Stavness,Wei Guo
出处
期刊:Plant phenomics [American Association for the Advancement of Science]
卷期号:2020 被引量:163
标识
DOI:10.34133/2020/3521852
摘要

The detection of wheat heads in plant images is an important task for estimating pertinent wheat traits including head population density and head characteristics such as health, size, maturity stage, and the presence of awns. Several studies have developed methods for wheat head detection from high-resolution RGB imagery based on machine learning algorithms. However, these methods have generally been calibrated and validated on limited datasets. High variability in observational conditions, genotypic differences, development stages, and head orientation makes wheat head detection a challenge for computer vision. Further, possible blurring due to motion or wind and overlap between heads for dense populations make this task even more complex. Through a joint international collaborative effort, we have built a large, diverse, and well-labelled dataset of wheat images, called the Global Wheat Head Detection (GWHD) dataset. It contains 4700 high-resolution RGB images and 190000 labelled wheat heads collected from several countries around the world at different growth stages with a wide range of genotypes. Guidelines for image acquisition, associating minimum metadata to respect FAIR principles, and consistent head labelling methods are proposed when developing new head detection datasets. The GWHD dataset is publicly available at http://www.global-wheat.com/and aimed at developing and benchmarking methods for wheat head detection.
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