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Determining Crop Growth Dynamics in Sorghum Breeding Trials Through Remote and Proximal Sensing Technologies

机译:通过遥感和近端传感技术确定高粱育种试验中的作物生长动态

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With the advent of sophisticated spectral imaging the development of proximal and remote-sensing high-throughput field phenotyping platforms has become progressively feasible. Such platforms, combined with new innovative image-analysis and machine-learning tools, will likely become the benchmark in high-throughput plant phenotyping frameworks for determining plant responses at the leaf, plant and canopy level. At the University of Queensland, we have developed a cost-effective high-throughput phenotyping pipeline that harvests sensing data from plants utilising proximal sensors. Here, we describe the application of this software pipeline to analyse crop growth dynamics from (i) proximal sensors on-board a tractor-based phenotyping platform and (ii) cameras attached to small unmanned aerial vehicles. Specifically, we discuss the use of high-resolution characterization of time-sequence red-edge data obtained from both sensing platforms to derive estimates for dynamic growth parameters in sorghum breeding trials. Although some temporal bias existed between the two platforms the relationships at spatial peak canopy (R2 = 0.71) and plot level (R2 = 0.89) were strong. Application of these technologies across breeding plots will enhance phenotyping capabilities and hence the ability to discriminate among responses of genotypes across different environments.
机译:随着复杂光谱成像技术的出现,近端和遥感高通量表型分析平台的发展已逐渐可行。这种平台与新的创新图像分析和机器学习工具相结合,将有可能成为高通量植物表型分析框架的基准,用于确定叶片,植物和冠层水平的植物反应。在昆士兰大学,我们已经开发出了一种经济高效的高通量表型分析管道,该管道可利用近端传感器从植物中收集传感数据。在这里,我们描述了该软件管道的应用,以分析(i)拖拉机基于表型的平台上的近端传感器和(ii)附接到小型无人机的相机来分析作物生长动态。具体来说,我们讨论了从两个传感平台获得的时间序列红边数据的高分辨率表征,以得出高粱育种试验中动态生长参数的估计值。尽管两个平台之间存在一些时间偏差,但在空间峰值冠层(R 2 = 0.71)和图水平(R 2 = 0.89)。这些技术在育种场中的应用将增强表型分型能力,从而增强区分不同环境中基因型响应的能力。

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