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Paper record

Automated seminal root angle measurement with corrective annotation.

Smith AG, Malinowska M, Ruud AK, Janss L, Krusell L, Jensen JD, Asp T.

AoB PLANTS · 19 Sept 2024 · 10.1093/aobpla/plae046

Abstract

Measuring seminal root angle is an important aspect of root phenotyping, yet automated methods are lacking. We introduce SeminalRootAngle, a novel open-source automated method that measures seminal root angles from images. To ensure our method is flexible and user-friendly we build on an established corrective annotation training method for image segmentation. We tested SeminalRootAngle on a heterogeneous dataset of 662 spring barley rhizobox images, which presented challenges in terms of image clarity and root obstruction. Validation of our new automated pipeline against manual measurements yielded a Pearson correlation coefficient of 0.71. We also measure inter-annotator agreement, obtaining a Pearson correlation coefficient of 0.68, indicating that our new pipeline provides similar root angle measurement accuracy to manual approaches. We use our new SeminalRootAngle tool to identify single nucleotide polymorphisms (SNPs) significantly associated with angle and length, shedding light on the genetic basis of root architecture.

Code and data availability

The paper's rhizobox root image dataset is publicly deposited on Zenodo, the SeminalRootAngle analysis code/installer is open-sourced on GitHub, and the BVS QTL analysis materials are on a second authors' GitHub repository. All are paper-specific, public, and actionable.

Datasetpublic

To promote transparency and reproducibility, we makeour image dataset freely available under a CreativeCommons license at https://zenodo.org/records/7870965#.ZEp5iXZByUk

Open resource ↗zenodo · 7870965 · lines:30-44
Codepublic

we open-source our code and make our downloadable installer available at https://github.com/Abe404/SeminalRootAngle

Open resource ↗github · Abe404/SeminalRootAngle · lines:30-44