GrowliFlower: An image time series dataset for GROWth analysis of cauLIFLOWER
Jana Kierdorf, Laura Verena Junker-Frohn, Mike Delaney, Mariele Donoso, Olave, Andreas Burkart, Hannah Jaenicke, Onno Muller, Uwe Rascher, Ribana, Roscher

TL;DR
GrowliFlower is a comprehensive, georeferenced UAV image time series dataset for cauliflower growth analysis, including phenotypic traits, segmentation labels, and baseline results to advance machine learning in agriculture.
Contribution
The paper introduces GrowliFlower, a novel dataset with detailed annotations and phenotypic data for cauliflower, enabling new research in plant growth monitoring and computer vision applications.
Findings
Provides 14,000 plant coordinates and phenotypic traits.
Includes pixel-accurate leaf and plant segmentations.
Baseline instance segmentation results demonstrate dataset utility.
Abstract
This article presents GrowliFlower, a georeferenced, image-based UAV time series dataset of two monitored cauliflower fields of size 0.39 and 0.60 ha acquired in 2020 and 2021. The dataset contains RGB and multispectral orthophotos from which about 14,000 individual plant coordinates are derived and provided. The coordinates enable the dataset users the extraction of complete and incomplete time series of image patches showing individual plants. The dataset contains collected phenotypic traits of 740 plants, including the developmental stage as well as plant and cauliflower size. As the harvestable product is completely covered by leaves, plant IDs and coordinates are provided to extract image pairs of plants pre and post defoliation, to facilitate estimations of cauliflower head size. Moreover, the dataset contains pixel-accurate leaf and plant instance segmentations, as well as stem…
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Taxonomy
TopicsRemote Sensing in Agriculture · Smart Agriculture and AI · Leaf Properties and Growth Measurement
