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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Mapping surface roughness and soil moisture using multi-angle radar imagery without ancillary data
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Mapping surface roughness and soil moisture using multi-angle radar imagery without ancillary data

机译:使用无辅助数据的多角度雷达图像绘制表面粗糙度和土壤湿度

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摘要

The Integral Equation Model (IEM) is the most widely-used, physically based radar backscatter model for sparsely vegetated landscapes. In general, IEM quantifies the magnitude of backscattering as a function of moisture content and surface roughness, which are unknown, and the known radar configurations. Estimating surface roughness or soil moisture by solving the IEM with two unknowns is a classic example of underdetermination and is at the core of the problems associated with the use of radar imagery coupled with IEM-like models. This study offers a solution strategy to this problem by the use of multi-angle radar images, and thus provides estimates of roughness and soil moisture without the use of ancillary field data. Results showed that radar images can provide estimates of surface soil moisture at the watershed scale with good accuracy. Results at the field scale were less accurate, likely due to the influence of image speckle. Results also showed that subsurface roughness caused by rock fragments in the study sites caused error in conventional applications of IEM based on field measurements, but was minimized by using the multi-angle approach. (C) 2007 Published by Elsevier Inc.
机译:积分方程模型(IEM)是稀疏植被景观中使用最广泛的基于物理的雷达反向散射模型。通常,IEM根据未知的水分含量和表面粗糙度以及已知的雷达配置来量化反向散射的幅度。通过用两个未知数求解IEM来估计表面粗糙度或土壤湿度是欠确定性的经典示例,并且是与使用雷达影像和类似IEM的模型相关的问题的核心。这项研究通过使用多角度雷达图像为该问题提供了解决方案,因此无需使用辅助场数据即可提供粗糙度和土壤湿度的估计值。结果表明,雷达图像可以在分水岭范围内以较高的精度估算地表土壤湿度。场尺度上的结果准确性较差,这可能是由于图像斑点的影响所致。结果还表明,由研究现场的岩石碎片引起的地下粗糙度在基于现场测量的IEM的常规应用中引起了误差,但通过使用多角度方法可以将其减小。 (C)2007由Elsevier Inc.出版

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