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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Use of coupled canopy structure dynamic and radiative transfer models to estimate biophysical canopy characteristics
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Use of coupled canopy structure dynamic and radiative transfer models to estimate biophysical canopy characteristics

机译:利用耦合的冠层结构动态和辐射传递模型估算生物物理冠层特性

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摘要

Leaf area index (LAI) is a key variable for the understanding of several eco-physiological processes within a vegetation canopy, The LAI could thus provide vital information for the management of the environment and agricultural practices when estimated continuously over time and space thanks to remote sensing sensors. This study proposed a method to estimate LAI spatial and temporal variation based on multi-temporal remote sensing observations processed using a simple semi-mechanistic canopy structure dynamic model (CSDM) coupled with a radiative transfer model (RTM), The CSDM described the temporal evolution of the LAI as function of the accumulated daily air temperature as measured from classical ground meteorological stations. The retrieval performances were evaluated for two different data sets: first, a data set simulated by the RTM but taking into account realistic measurement conditions and uncertainties resulting from different error sources; second, an experimental data set acquired over maize crops the Blue Earth City area (USA) in 1998. Results showed that the proposed approach improved significantly the retrieval performances for LAI mainly by smoothing the residual errors associated to each individual observation. In addition it provides a way to describe in a continuous manner the LAI time course from a limited number of observations during the growth cycle.
机译:叶面积指数(LAI)是了解植被冠层内若干生态生理过程的关键变量,因此,由于时间和空间的不断估算,LAI可以为环境和农业实践的管理提供重要信息感应传感器。这项研究提出了一种基于多时相遥感观测的LAI时空变化估计方法,该观测值是使用简单的半机械机盖结构动态模型(CSDM)和辐射传输模型(RTM)处理的,CSDM描述了时间演化从经典地面气象站测得的LAI与每日累积气温的函数关系。针对两个不同的数据集对检索性能进行了评估:首先,RTM模拟了一个数据集,但考虑了实际的测量条件和不同误差源所导致的不确定性;第二,1998年在美国蓝色地球城地区(Blue Earth City Area)(美国)获得的玉米作物的实验数据集。结果表明,所提出的方法主要是通过平滑与每个观察相关的残留误差,显着提高了LAI的检索性能。另外,它提供了一种从生长周期中有限数量的观测值连续描述LAI时间过程的方法。

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