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Intercomparison of Soil Moisture Retrieved from GNSS-R and from Passive L-Band Radiometry at the Valencia Anchor Station

机译:瓦伦西亚锚站从GNSS-R和被动L波段辐射学获得的土壤水分的比对

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摘要

In this paper, the SOMOSTA (Soil Moisture Monitoring Station) experiment on the intercomparison of soil moisture monitoring from Global Navigation Satellite System Reflectometry (GNSS-R) signals and passive L-band microwave radiometer observations at the Valencia Anchor Station is introduced. The GNSS-R instrument has an up-looking antenna for receiving direct signals from satellites, and a dual-pol down-looking antenna for receiving LHCP (left-hand circular polarization) and RHCP (right-hand circular polarization) reflected signals from the soil surface. Data were collected from the three different antennas through the two channels of Oceanpal GNSS-R receiver and, in addition, calibration was performed to reduce the impact from the differing channels. Reflectivity was thus measured, and soil moisture could be retrieved. The ESA (European Space Agency)-funded ELBARA-II (ESA L Band Radiometer II) is an L-band radiometer with two channels with 11 MHz bandwidth and respective center frequencies of 1407.5 MHz and 1419.5 MHz. The ELBARAII antenna is a large dual-mode Picket horn that is 1.4 m wide, with a length of 2.7 m with −3 dB full beam width of 12° (±6° around the antenna main direction) and a gain of 23.5 dB. By comparing GNSS-R and ELBARA-II radiometer data, a high correlation was found between the LHCP reflectivity measured by GNSS-R and the horizontal/vertical reflectivity from the radiometer (with correlation coefficients ranging from 0.83 to 0.91). Neural net fitting was used for GNSS-R soil moisture inversion, and the RMSE (Root Mean Square Error) was 0.014 m3/m3. The determination coefficient between the retrieved soil moisture and in situ measurements was R2 = 0.90 for Oceanpal and R2 = 0.65 for Elbara II, and the ubRMSE (Unbiased RMSE) were 0.0128 and 0.0734 respectively. The soil moisture retrievals by both L-band remote sensing methods show good agreement with each other, and their mutual correspondence with in-situ measurements and with rainfall was also good.
机译:本文介绍了SOMOSTA(土壤水分监测站)实验,该实验通过全球导航卫星系统反射法(GNSS-R)信号与瓦伦西亚锚站的无源L波段微波辐射计观测数据进行土壤水分监测的对比。 GNSS-R仪器具有一个向上的天线,用于接收来自卫星的直接信号;以及一个双极化向下的天线,用于接收来自卫星的LHCP(左旋圆极化)和RHCP(右旋圆极化)反射信号。土壤表面。通过Oceanpal GNSS-R接收机的两个通道从三个不同的天线收集数据,此外,还进行了校准以减少来自不同通道的影响。因此测量了反射率,并且可以回收土壤水分。由ESA(欧洲航天局)资助的ELBARA-II(ESA L波段辐射仪II)是一种L波段辐射仪,具有两个11 MHz带宽的通道,各自的中心频率分别为1407.5 MHz和1419.5 MHz。 ELBARAII天线是一个宽1.4 m的大型双模Picket号角,长度为2.7 m,−3 dB的全波束宽度为12°(围绕天线主方向为±6°),增益为23.5 dB。通过比较GNSS-R和ELBARA-II辐射计的数据,发现GNSS-R测量的LHCP反射率与辐射计的水平/垂直反射率之间具有高度相关性(相关系数范围为0.83至0.91)。神经网络拟合用于GNSS-R土壤水分反演,RMSE(均方根误差)为0.014 m 3 / m 3 。对于海洋而言,取回的土壤水分与现场测量之间的测定系数为R 2 = 0.90,对于Elbara II为R 2 = 0.65,并且ubRMSE(无偏RMSE)为0.0128和0.0734。两种L波段遥感方法对土壤水分的反演显示出良好的一致性,并且与实地测量和降雨之间的相互对应性也很好。

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