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Potential of multispectral reflectance for assessment of snow geophysical parameters in Solang valley in the lower Indian Himalayas

机译:低光谱喜马拉雅山Solang山谷中雪地球物理参数的多光谱反射潜力评估

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摘要

Snow geophysical parameters such as wetness, density and permittivity are a significant input in hydrological models and water resource management. In this paper, we utilize the triangle method based on a feature space developed with the near-infrared (NIR) reflectance and the Normalized Differenced Snow Index (NDSI) for the estimation of surface snow wetness, permittivity and density. The triangular feature space based on NIR reflectance and NDSI is parameterized to yield a linear relationship between the snow wetness and the NIR reflectance. Snow density and permittivity are derived based on the least squares solution of empirical relations based on the observations of surface snow wetness. The proposed methodology was evaluated using Sentinel-2 data, and the modeled snow geophysical parameters were validated with respect to field measurements. Based on the results, it was inferred that the NIR reflectance varies linearly with the liquid water content in the snow. A good agreement was determined between the modeled and measured parameters for wet snow conditions as observed by the coefficient of determination of 0.968, 0.521 and 0.969 for the snow wetness, density and permittivity (real part), respectively. The proposed approach can be significantly utilized with unmanned aerial sensors for monitoring of physical properties of fresh or wet snow and is thus expected to contribute considerably in hydrological applications and avalanche studies.
机译:诸如湿度,密度和介电常数之类的雪地球物理参数是水文模型和水资源管理中的重要输入。在本文中,我们利用基于近红外(NIR)反射率和归一化积雪指数(NDSI)开发的特征空间的三角法来估计表面积雪的湿度,介电常数和密度。对基于NIR反射率和NDSI的三角形特征空间进行参数化,以得出雪湿度和NIR反射率之间的线性关系。根据经验关系的最小二乘解,基于对表雪湿度的观测,得出了雪密度和介电常数。使用Sentinel-2数据对提出的方法进行了评估,并针对现场测量对建模的雪地球物理参数进行了验证。根据结果​​可以推断,NIR反射率随雪中液态水含量线性变化。通过分别对积雪的湿度,密度和介电常数(实部)确定的系数为0.968、0.521和0.969观察到的湿雪条件的模型参数与实测参数之间确定了良好的一致性。所提出的方法可以与无人驾驶航空传感器一起大量用于监测新鲜或湿雪的物理特性,因此有望在水文应用和雪崩研究中做出巨大贡献。

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