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Observation and simulation of net primary productivity in Qilian Mountain, western China

机译:西部祁连山净初级生产力的观测与模拟

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摘要

We modeled net primary productivity (NPP) at high spatial resolution using an advanced spaceborne thermal emission and reflection radiometer (ASTER) image of a Qilian Mountain study area using the boreal ecosystem productivity simulator (BEPS). Two key driving variables of the model, leaf area index (LAI) and land cover type, were derived from ASTER and moderate resolution imaging spectroradiometer (MODIS) data. Other spatially explicit inputs included daily meteorological data (radiation, precipitation, temperature, humidity), available soil water holding capacity (AWC), and forest biomass. NPP was estimated for coniferous forests and other land cover types in the study area. The result showed that NPP of coniferous forests in the study area was about 4.4tC ha~(-1) y~(-1). The correlation coefficient between the modeled NPP and ground measurements was 0.84, with a mean relative error of about 13.9%.
机译:我们使用北方生态系统生产力模拟器(BEPS),使用祁连山研究区的先进星载热发射和反射辐射计(ASTER)图像,以高空间分辨率对净初级生产力(NPP)进行建模。该模型的两个关键驱动变量,叶面积指数(LAI)和土地覆盖类型,是从ASTER和中分辨率成像光谱仪(MODIS)数据得出的。其他在空间上明确的输入数据包括每日气象数据(辐射,降水,温度,湿度),可用土壤持水量(AWC)和森林生物量。在研究区域中估计了针叶林和其他土地覆盖类型的NPP。结果表明,研究区针叶林NPP约为4.4tC ha〜(-1)y〜(-1)。建模的NPP与地面测量值之间的相关系数为0.84,平均相对误差约为13.9%。

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