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Journal Article

TubAR: an R Package for Quantifying Tuber Shape and Skin Traits from Images

Michael D. Miller; Cari A. Schmitz Carley; Rachel A. Figueroa; Max J. Feldman; Darrin Haagenson; Laura M. Shannon
American Journal of Potato Research · Vol. 100, Issue 1 · pp. 52-62 · 2023

Abstract

Potato market value is heavily affected by tuber quality traits such as shape, color, and skinning. Despite this, potato breeders often rely on subjective scales that fail to precisely define phenotypes. Individual human evaluators and the environments in which ratings are taken can bias visual quality ratings. Collecting quality trait data using machine vision allows for precise measurements that will remain reliable between evaluators and breeding programs. Here we present TubAR (Tuber Analysis in R), an image analysis program designed to collect data for multiple tuber quality traits at low cost to breeders. To assess the efficacy of TubAR in comparison to visual scales, red-skinned potatoes were evaluated using both methods. Broad sense heritability was consistently higher for skinning, roundness, and length to width ratio using TubAR. TubAR collects essential data on fresh market potato breeding populations while maintaining efficiency by measuring multiple traits through one phenotyping protocol.

Bibliographic Information

JournalAmerican Journal of Potato Research
PublisherSpringer
Publication Date2023-02-01
Publication Year2023
Volume100
Issue1
Pages52-62
Document TypeJournal Article
Print ISSN1099-209X
eISSN1874-9380
DOI10.1007/s12230-022-09894-z

Access Information

NARA Access Coverage1923-01-01~Current
Journal Homepagehttps://www.springer.com/journal/12230
Publisher PageOpen Publisher Page
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