管道(软件)
计算机科学
分割
吞吐量
人工智能
领域(数学)
卷积神经网络
像素
温室
模式识别(心理学)
植物生长
机器学习
计算机视觉
数学
生物
农学
电信
纯数学
无线
程序设计语言
作者
Xingche Guo,Yumou Qiu,Dan Nettleton,Patrick S. Schnable
出处
期刊:Plant phenomics
[American Association for the Advancement of Science]
日期:2023-01-01
卷期号:5
被引量:9
标识
DOI:10.34133/plantphenomics.0052
摘要
High-throughput plant phenotyping-the use of imaging and remote sensing to record plant growth dynamics-is becoming more widely used. The first step in this process is typically plant segmentation, which requires a well-labeled training dataset to enable accurate segmentation of overlapping plants. However, preparing such training data is both time and labor intensive. To solve this problem, we propose a plant image processing pipeline using a self-supervised sequential convolutional neural network method for in-field phenotyping systems. This first step uses plant pixels from greenhouse images to segment nonoverlapping in-field plants in an early growth stage and then applies the segmentation results from those early-stage images as training data for the separation of plants at later growth stages. The proposed pipeline is efficient and self-supervising in the sense that no human-labeled data are needed. We then combine this approach with functional principal components analysis to reveal the relationship between the growth dynamics of plants and genotypes. We show that the proposed pipeline can accurately separate the pixels of foreground plants and estimate their heights when foreground and background plants overlap and can thus be used to efficiently assess the impact of treatments and genotypes on plant growth in a field environment by computer vision techniques. This approach should be useful for answering important scientific questions in the area of high-throughput phenotyping.
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