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Estimation of Surface Snow Properties Using Combined Millimeter-Wave Backscatter and Near-Infrared Reflectance Measurements

机译:利用组合毫米波背向散射和近红外反射测量估算表面积雪特性

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摘要

Knowledge of surficial snow properties such as grain size, surface roughness, and free-water content provides clues to the metamorphic state of snow on the ground, which in turn yields information on weathering processes and climatic activity. Remote sensing techniques using combined concurrent measurements of near-infrared passive reflectance and millimeter-wave radar backscatter show promise in estimating the above snow parameters. Near-infrared reflectance is strongly dependent on snow grain size and free-water content, while millimeter-wave backscatter is primarily dependent on free-water content and, to some extent, on the surface roughness. A neural-network based inversion algorithm has been developed that optimally combines near-infrared and millimeter-wave measurements for accurate estimation of the relevant snow properties. The algorithm uses reflectances at wavelengths of 1160 nm, 1260 nm and 1360 nm, as well as co-polarized and cross-polarized backscatter at a frequency of 95 GHz. The inversion algorithm has been tested using simulated data, and is seen to perform well under noise-free conditions. Under noise-added conditions, a signal-to-noise ratio of 32 dB or greater ensures acceptable errors in snow parameter estimation.
机译:了解表层积雪的特性,例如晶粒大小,表面粗糙度和自由水含量,可以提供有关地面积雪变质状态的线索,进而得出有关风化过程和气候活动的信息。结合使用近红外无源反射率和毫米波雷达反向散射的并发测量的遥感技术在估计上述降雪参数方面显示出希望。近红外反射率主要取决于雪粒大小和自由水含量,而毫米波反向散射主要取决于自由水含量,并在某种程度上取决于表面粗糙度。已经开发出了一种基于神经网络的反演算法,该算法将近红外和毫米波测量值最佳地结合在一起,以准确估计相关的降雪特性。该算法使用在1160 nm,1260 nm和1360 nm波长处的反射率,以及在95 GHz频率下的共偏振和交叉偏振反向散射。该反演算法已使用模拟数据进行了测试,并且在无噪声条件下表现良好。在增加噪声的条件下,信噪比为32 dB或更高可确保雪参数估计中的可接受误差。

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