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A Novel Approach to Assess Salt Stress Tolerance in Wheat Using Hyperspectral Imaging

机译:利用高光谱成像技术评估小麦耐盐胁迫的新方法

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摘要

Salinity stress has significant adverse effects on crop productivity and yield. The primary goal of this study was to quantitatively rank salt tolerance in wheat using hyperspectral imaging. Four wheat lines were assayed in a hydroponic system with control and salt treatments (0 and 200 mM NaCl). Hyperspectral images were captured one day after salt application when there were no visual symptoms. Subsequent to necessary preprocessing tasks, two endmembers, each representing one of the treatment, were identified in each image using successive volume maximization. To simplify image analysis and interpretation, similarity of all pixels to the salt endmember was calculated by a technique proposed in this study, referred to as vector-wise similarity measurement. Using this approach allowed high-dimensional hyperspectral images to be reduced to one-dimensional gray-scale images while retaining all relevant information. Two methods were then utilized to analyze the gray-scale images: minimum difference of pair assignments and Bayesian method. The rankings of both methods were similar and consistent with the expected ranking obtained by conventional phenotyping experiments and historical evidence of salt tolerance. This research highlights the application of machine learning in hyperspectral image analysis for phenotyping of plants in a quantitative, interpretable, and non-invasive manner.
机译:盐分胁迫对作物的生产力和产量有重大不利影响。这项研究的主要目的是使用高光谱成像技术对小麦的耐盐性进行定量排名。在有对照和盐处理(0和200 mM NaCl)的水培系统中分析了四个小麦品系。食盐施用后一天没有视觉症状时捕获高光谱图像。在必要的预处理任务之后,使用连续的体积最大化在每个图像中标识了两个端部成员,每个端部代表一种处理。为了简化图像分析和解释,通过本研究中提出的一种技术(称为矢量方向相似性测量)来计算所有像素与盐端成员的相似性。使用该方法可以将高维高光谱图像缩小为一维灰度图像,同时保留所有相关信息。然后使用两种方法来分析灰度图像:对分配的最小差异和贝叶斯方法。两种方法的排名相似,并且与通过常规表型实验获得的预期排名和耐盐性的历史证据一致。这项研究强调了机器学习在高光谱图像分析中以定量,可解释和非侵入性方式对植物表型进行的应用。

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