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Soil moisture retrieval through a merging of multi-temporal L-band SAR data and hydrologic modelling

机译:通过融合多时相L波段saR数据和水文模拟来检索土壤水分

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摘要

he objective of the study is to investigate the potential of retrieving superficial soil moisture content (m(v)) from multi-temporal L-band synthetic aperture radar (SAR) data and hydrologic modelling. The study focuses on assessing the performances of an L-band SAR retrieval algorithm intended for agricultural areas and for watershed spatial scales (e. g. from 100 to 10 000 km(2)). The algorithm transforms temporal series of L-band SAR data into soil moisture contents by using a constrained minimization technique integrating a priori information on soil parameters. The rationale of the approach consists of exploiting soil moisture predictions, obtained at coarse spatial resolution ( e. g. 1530 km2) by point scale hydrologic models ( or by simplified estimators), as a priori information for the SAR retrieval algorithm that provides soil moisture maps at high spatial resolution (e. g. 0.01 km(2)). In the present form, the retrieval algorithm applies to cereal fields and has been assessed on simulated and experimental data. The latter were acquired by the airborne E-SAR system during the AgriSAR campaign carried out over the Demmin site (Northern Germany) in 2006. Results indicate that the retrieval algorithm always improves the a priori information on soil moisture content though the improvement may be marginal when the accuracy of prior mv estimates is better than 5%.
机译:该研究的目的是研究从多时相L波段合成孔径雷达(SAR)数据和水文模型中检索表层土壤含水量(m(v))的潜力。这项研究着重于评估用于农业地区和流域空间尺度(例如100至10000 km(2))的L波段SAR检索算法的性能。该算法通过使用结合土壤参数先验信息的约束最小化技术,将L波段SAR数据的时间序列转换为土壤含水量。该方法的基本原理包括利用点尺度水文模型(或简化估算器)在粗略的空间分辨率(例如1530 km2)下获得的土壤湿度预测,作为SAR检索算法的先验信息,该算法可提供高土壤湿度图空间分辨率(例如0.01 km(2))。在目前的形式中,检索算法适用于谷物田,并已根据模拟和实验数据进行了评估。后者是在2006年在Demmin站点(德国北部)进行的AgriSAR运动期间由机载E-SAR系统获取的。结果表明,尽管算法的改进可能是微不足道的,但该检索算法始终能改善土壤水分的先验信息。当先前的mv估算值的准确性优于5%时。

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