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SAC-D/Aquarius soil moisture product development and evaluation for Pampas Plains (Argentina)

机译:SAC-D /水瓶座土壤水分产品的开发和评估(阿根廷)

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In this work, several retrieval algorithms were implemented to retrieve soil moisture (sm) and optical depth (τ) from Aquarius/SAC-D observations. Currently used sm retrieval algorithms (H- and V-pol Single Channel Algorithm, Microwave Polarization Difference Algorithm) were computed over Pampas Plains, Argentina. The methodology of a novel Bayesian algorithm developed was also presented, and its results were contrasted with the previous algorithms. Furthermore, an Artificial Neural Network (ANN) approach to retrieve sm from Aquarius brightness temperature was implemented and trained using SMOS Level-2 sm product. Finally, performance metrics for each algorithm were derived using SMOS L2 sm as benchmark product.
机译:在这项工作中,实施了几种检索算法,以从Aquarius / SAC-D观测中检索土壤湿度(sm)和光学深度(τ)。在阿根廷潘帕斯平原上计算了当前使用的sm检索算法(H和V-pol单通道算法,微波极化差分算法)。还提出了一种新的贝叶斯算法的开发方法,并将其结果与以前的算法进行了对比。此外,使用SMOS Level-2 sm产品实施并训练了一种人工神经网络(ANN)方法来从水瓶座亮度温度中检索sm。最后,使用SMOS L2 sm作为基准产品得出每种算法的性能指标。

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