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Estimation of vegetation water content using hyperspectral vegetation indices: a comparison of crop water indicators in response to water stress treatments for summer maize

机译:利用高光谱植被指数估算植被含水量:比较夏玉米水分胁迫下作物水分指标

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Vegetation water content is one of the important biophysical features of vegetation health, and its remote estimation can be utilized to real-timely monitor vegetation water stress. Here, we compared the responses of canopy water content (CWC), leaf equivalent water thickness (EWT), and live fuel moisture content (LFMC) to different water treatments and their estimations using spectral vegetation indices (VIs) based on water stress experiments for summer maize during three consecutive growing seasons 2013–2015 in North Plain China. Results showed that CWC was sensitive to different water treatments and exhibited an obvious single-peak seasonal variation. EWT and LFMC were less sensitive to water variation and EWT stayed relatively stable while LFMC showed a decreasing trend. Among ten hyperspectral VIs, green chlorophyll index (CIgreen), red edge normalized ratio (NRred edge), and red-edge chlorophyll index (CIred edge) were the most sensitive VIs responding to water variation, and they were optimal VIs in the prediction of CWC and EWT. Compared to EWT and LFMC, CWC obtained the best predictive power of crop water status using VIs. This study demonstrated that CWC was an optimal indicator to monitor maize water stress using optical hyperspectral remote sensing techniques.
机译:植被含水量是植被健康的重要生物物理特征之一,其远程估算可用于实时监测植被水分胁迫。在这里,我们比较了冠层含水量(CWC),叶片当量水厚(EWT)和活燃料水分含量(LFMC)对不同水处理的响应,并使用基于光谱胁迫实验的光谱植被指数(VI)进行了估算中国北方平原连续三个生长季(2013-2015年)的夏季玉米。结果表明,CWC对不同的水处理敏感,并且表现出明显的单峰季节变化。 EWT和LFMC对水分变化较不敏感,EWT保持相对稳定,而LFMC呈下降趋势。在十个高光谱VI中,绿色叶绿素指数(CIgreen),红色边缘归一化比率(NRred edge)和红色边缘叶绿素指数(CIred edge)是对水变化响应最敏感的VI,它们是预测VI的最佳VI。 CWC和EWT。与EWT和LFMC相比,CWC使用VI获得了作物水状况的最佳预测能力。这项研究表明,CWC是使用光学高光谱遥感技术监测玉米水分胁迫的最佳指标。

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