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首页> 外文期刊>Revista Brasileira de Meteorologia >Estimation of gross primary production of the Amazon-Cerrado transitional forest by remote sensing techniques
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Estimation of gross primary production of the Amazon-Cerrado transitional forest by remote sensing techniques

机译:利用遥感技术估算亚马逊-塞拉多过渡森林的初级生产总值

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The gross primary production (GPP) of ecosystems is an important variable in the study of global climate change. Generally, the GPP has been estimated by micrometeorological techniques. However, these techniques have a high cost of implantation and maintenance, making the use of orbital sensor data an option to be evaluated. Thus, the objective of this study was to evaluate the potential of the MODIS (Moderate Resolution Imaging Spectroradiometer) MOD17A2 product and the vegetation photosynthesis model (VPM) to predict the GPP of the Amazon-Cerrado transitional forest. The GPP predicted by MOD17A2 (GPPMODIS) and VPM (GPPVPM) were validated with the GPP estimated by eddy covariance (GPPEC). The GPPMODIS, GPPVPM and GPPEC have similar seasonality, with higher values in the wet season and lower in the dry season. However, the VPM performed was better than the MOD17A2 to estimate the GPP, due to use local climatic data for predict the light use efficiency, while the MOD17A2 use a global circulation model and the lookup table of each vegetation type to estimate the light use efficiency.
机译:生态系统的初级生产总值(GPP)是全球气候变化研究中的重要变量。通常,已经通过微气象技术估计了GPP。但是,这些技术具有很高的植入和维护成本,使得使用轨道传感器数据成为需要评估的选择。因此,本研究的目的是评估MODIS(中等分辨率成像光谱仪)MOD17A2产品和植被光合作用模型(VPM)预测亚马逊-塞拉多过渡林的GPP的潜力。 MOD17A2(GPPMODIS)和VPM(GPPVPM)预测的GPP已通过涡流协方差(GPPEC)估计的GPP进行了验证。 GPPMODIS,GPPVPM和GPPEC具有相似的季节性,在雨季值较高,而在旱季值较低。但是,由于使用局部气候数据来预测光利用效率,因此执行的VPM优于MOD17A2来估计GPP,而MOD17A2使用全局循环模型和每种植被类型的查找表来估计光利用效率。

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