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Growth Analysis of Wheat Using Machine Vision: Opportunities and Challenges

机译:使用机器愿景的小麦的成长分析:机遇与挑战

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摘要

Crop growth analysis is used for the assessment of crop yield potential and stress tolerance. Capturing continuous plant growth has been a goal since the early 20th century; however, this requires a large number of replicates and multiple destructive measurements. The use of machine vision techniques holds promise as a fast, reliable, and non-destructive method to analyze crop growth based on surrogates for plant traits and growth parameters. We used machine vision to infer plant size along with destructive measurements at multiple time points to analyze growth parameters of spring wheat genotypes. We measured side-projected area by machine vision and RGB imaging. Three traits, i.e., biomass (BIO), leaf dry weight (LDW), and leaf area (LA), were measured using low-throughput techniques. However, RGB imaging was used to produce side projected area (SPA) as the high throughput trait. Significant effects of time point and genotype on BIO, LDW, LA, and SPA were observed. SPA was a robust predictor of leaf area, leaf dry weight, and biomass. Relative growth rate estimated using SPA was a robust predictor of the relative growth rate measured using biomass and leaf dry weight. Large numbers of entries can be assessed by this method for genetic mapping projects to produce a continuous growth curve with fewer replicates.
机译:作物生长分析用于评估作物产量潜力和应力耐受性。自20世纪初以来,捕获连续植物增长一直是目标;但是,这需要大量的重复和多重破坏性测量。使用机器视觉技术的使用是一种快速,可靠和无损性的方法,可根据植物性状和生长参数的替代品分析作物生长。我们使用机器视觉来推断出植物大小以及多个时间点的破坏性测量,以分析春小麦基因型的生长参数。我们通过机器视觉和RGB成像测量侧面投影区域。使用低通量技术测量三个性状,即生物量(Bio),叶片干重(LDW)和叶面积(LA)。然而,RGB成像用于生产侧投影区域(SPA)作为高吞吐量特征。观察到时间点和基因型对BIO,LDW,LA和SPA的显着影响。水疗中心是叶面积,叶干重量和生物质的强大预测因子。使用SPA估计的相对生长速率是使用生物质和叶片干重测量的相对生长速率的稳健预测因子。通过这种方法可以评估大量条目,用于遗传映射项目,以产生较少的重复的连续生长曲线。

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