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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Radiative transfer Vcmax estimation from hyperspectral imagery and SIF retrievals to assess photosynthetic performance in rainfed and irrigated plant phenotyping trials
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Radiative transfer Vcmax estimation from hyperspectral imagery and SIF retrievals to assess photosynthetic performance in rainfed and irrigated plant phenotyping trials

机译:从高光谱图像和SIF检索的辐射转移VCmax估计,评估雨量和灌溉植物表型试验中的光合性能

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Plant photosynthetic traits may be indicative of stress tolerance and performance in the field, making their accurate assessment critical in phenotyping trials. The maximum rate of carboxylation (Vcmax) is a key parameter for estimating CO2 assimilation (A), as it controls the CO2 fixation rate. This study demonstrates the utility of combining airborne- based solar-induced chlorophyll fluorescence (SIF) and hyperspectral imagery through the inversion of the Soil-Canopy Observation of Photosynthesis and Energy (SCOPE) model to estimate Vcmax, using sensor resolutions available in precision agriculture technologies. Vcmax was quantified in three wheat phenotyping experimental fields during the 2015-2018 growing seasons, comprising both rainfed and irrigated conditions. Airborne campaigns were carried out with two hyperspectral sensors, covering the 400-850 nm (20 cm resolution) and 950-1750 nm (70 cm resolution) spectral regions, and with a thermal camera (25 cm resolution) in the 8-14 mu m region. Validation between model-estimated and field-measured Vcmax was statistically significant (r(2) = 0.77; p-value <= 2.2e - 16), and Vcmax was reliably associated with net assimilation both in irrigated and rainfed conditions (r(2) = 0.65 and 0.5, respectively). By contrast, simulated chlorophyll content (Cab) and airborne-derived structural and chlorophyll indicators (NDVI and PSSRb) lacked significant correlations with assimilation rate in irrigated plots, while the relationship between assimilation rate and the crop water stress index (CWSI) was not significant in rainfed plots. The superior sensitivity of remotely-sensed Vcmax under irrigated conditions was likely related to its robustness to distortions from high canopy densities observed in other indices. The remote sensing retrieval of Vcmax, and the methodology demonstrated in this study is directly relevant for high-throughput plant phenotyping and for precision agriculture applications.
机译:植物光合状体性状可能表明该领域的应力耐受性和性能,使其准确评估在表型试验中至关重要。羧化(Vcmax)的最大速率是用于估计CO2同化(A)的关键参数,因为它控制了CO2固定率。本研究表明,使用精密农业技术可用的传感器分辨率,将空气传播的太阳能诱导的叶绿素荧光(SIF)和高光谱图像组合通过倒置的光合作用和能量(范围)模型的反演来实现vcmax的效用。在2015 - 2018年生长季节的三个小麦表型实验领域中量化了VCmax,包括雨量和灌溉条件。使用两个高光谱传感器进行空中运动,覆盖400-850nm(20cm分辨率)和950-1750nm(70厘米分辨率)光谱区域,并在8-14亩中用热相机(25厘米分辨率)米地区。模型估计和现场测量的VCmax之间的验证统计学显着(R(2)= 0.77; p值<= 2.2e -16),并且Vcmax在灌溉和雨量条件下可靠地与净同化相关(R(2 )分别= 0.65和0.5)。相比之下,模拟叶绿素含量(驾驶室)和空气传播的结构和叶绿素指标(NDVI和PSSRB)缺乏与灌溉图中同化率的显着相关性,而同化率与作物水分应激指数(CWSI)之间的关系并不重要在雨水的情节中。在灌溉条件下,远程感测的VCmax的优越敏感性可能与其在其他指数中观察到的高冠层密度的鲁老金的鲁棒性有关。遥感检索VCMAX,本研究证明的方法与高通量植物表型和精密农业应用直接相关。

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