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首页> 外文期刊>Ecology and Evolution >Deriving a light use efficiency estimation algorithm using in situ hyperspectral and eddy covariance measurements for a maize canopy in Northeast China
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Deriving a light use efficiency estimation algorithm using in situ hyperspectral and eddy covariance measurements for a maize canopy in Northeast China

机译:利用原位高光谱和涡度协方差测量得出中国东北玉米冠层的光利用效率估算算法

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摘要

Abstract We estimated the light use efficiency ( LUE ) via vegetation canopy chlorophyll content ( CCC canopy ) based on in situ measurements of spectral reflectance, biophysical characteristics, ecosystem CO 2 fluxes and micrometeorological factors over a maize canopy in Northeast China. The results showed that among the common chlorophyll-related vegetation indices (VIs), CCC canopy had the most obviously exponential relationships with the red edge position (REP) ( R 2 = .97, p < .001) and normalized difference vegetation index (NDVI) ( R 2 = .91, p < .001). In a comparison of the indicating performances of NDVI, ratio vegetation index (RVI), wide dynamic range vegetation index (WDRVI), and 2-band enhanced vegetation index (EVI2) when estimating CCC canopy using all of the possible combinations of two separate wavelengths in the range 400?¢????1300 nm, EVI2 [1214, 1259] and EVI2 [726, 1248] were better indicators, with R 2 values of .92 and .90 ( p < .001). Remotely monitoring LUE through estimating CCC canopy derived from field spectrometry data provided accurate prediction of midday gross primary productivity ( GPP ) in a rainfed maize agro-ecosystem ( R 2 = .95, p < .001). This study provides a new paradigm for monitoring vegetation GPP based on the combination of LUE models with plant physiological properties.
机译:摘要基于原位光谱测量东北地区玉米冠层的光谱反射率,生物物理特征,生态系统CO 2通量和微气象因子,通过植被冠层叶绿素含量(CCC冠层)估算了光利用效率(LUE)。结果表明,在常见的叶绿素相关植被指数(VIs)中,CCC冠层与红色边缘位置(REP)的指数关系最明显(R 2 = .97,p <.001)和归一化差异植被指数(R 2 = .97,p <.001)。 NDVI)(R 2 = .91,p <.001)。在比较NDVI的指示性能时,使用两个单独波长的所有可能组合来估计CCC冠层时,比率植被指数(RVI),宽动态范围植被指数(WDRVI)和2波段增强植被指数(EVI2)在400±1300nm范围内,EVI2 [1214,1259]和EVI2 [726,1248]是更好的指示剂,R 2值为.92和.90(p <.001)。通过估算从现场光谱数据得出的CCC冠层,对LUE进行远程监控,可以准确预测雨养玉米农业生态系统的午间总初级生产力(GPP)(R 2 = .95,p <.001)。这项研究为LUE模型与植物生理特性的结合提供了一种监测植被GPP的新范例。

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