首页> 外文期刊>Journal of the American Water Resources Association >AUTOMATED CALIBRATION OF THE METRIC-LANDSAT EVAPOTRANSPIRATION PROCESS1
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AUTOMATED CALIBRATION OF THE METRIC-LANDSAT EVAPOTRANSPIRATION PROCESS1

机译:公制LANDSAT蒸发蒸腾过程的自动校准1

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摘要

A remaining challenge to applying satellite-based energy-balance algorithms for operational estimation of evapotranspiration (ET) is the calibration of the energy-balance model. Customized calibration for each image date is generally required to overcome biases associated with radiometric accuracy of the image, uncertainties in aerodynamic features of the landscape, background thermal conditions, and model assumptions. The CIMEC process (calibration using inverse modeling at extreme conditions) is an endpoint calibration procedure where near extreme conditions in the image are identified where the ET can be estimated and assigned. In the Mapping EvapoTranspiration at high Resolution with Internalized Calibration (METRIC™) energy-balance model, two endpoints represent the dry and wet ends of the ET spectrum. Generally, user-intervention is required to select locations in the image to produce best accuracy. To bring the METRIC and similar processes into the domain of less experienced operators, a consistent, reproducible, and dependable statistics-based procedure is introduced where relationships between vegetation amount and surface temperature are used to identify a subpopulation of locations (pixels) in an image that may best represent the calibration endpoints. This article describes the background and logic for the statistical approach, how the statistics were developed, area of interest requirements and assumptions, adjustment for dry conditions in desert climates, and implementation in a common image processing environment (ERDAS Imagine).
机译:将基于卫星的能量平衡算法用于蒸散量(ET)的运行估算中,仍然存在的挑战是能量平衡模型的校准。通常需要针对每个图像日期进行自定义校准,以克服与图像的辐射精确度,景观的空气动力学特征的不确定性,背景热条件和模型假设相关的偏差。 CIMEC过程(在极端条件下使用逆模型进行校准)是一种端点校准程序,可在其中确定图像中的极端条件,从而可以估算和分配ET。在通过内标校正(METRIC™)进行能量平衡的高分辨率制图蒸发蒸腾中,两个端点代表了ET光谱的干端和湿端。通常,需要用户干预以选择图像中的位置以产生最佳精度。为了将METRIC和类似过程引入经验不足的操作员领域,引入了一致,可重现和可靠的基于统计的过程,其中植被量与表面温度之间的关系用于识别图像中位置(像素)的亚群可能最能代表校准端点。本文介绍了统计方法的背景和逻辑,统计数据的开发方式,关注领域的要求和假设,沙漠气候中干旱条件的调整以及在通用图像处理环境中的实现(ERDAS Imagine)。

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