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A New GPS SNR-based Combination Approach for Land Surface Snow Depth Monitoring

机译:基于GPS SNR的陆地雪深度监测的新GPS SNR组合方法

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Snow is not only a critical storage component in the hydrologic cycle but also an important data for climate research; however, snowfall observations are only sparsely available. Signal-to-noise ratio (SNR) has recently been applied for sensing snow depths. Most studies only consider either global positioning system (GPS) L1 or L2 SNR data. In the current study, a new snow depth estimation approach is proposed using multipath reflectometry and SNR combination of GPS triple frequency (i.e. L1, L2 and L5) signals. The SNR combination method describes the relationship between antenna height variation and spectral peak frequency. Snow depths are retrieved from the SNR combination data at YEL2 and KIRU sites and validated by comparing it with in situ observations. The elevation angle ranges from 5° to 25°. The correlations for the two sites are 0.99 and 0.97. The performance of the new approach is assessed by comparing it with existing models. The proposed approach presents a high correlation of 0.95 and an accuracy (in terms of Root Mean Square Error) improvement of over 30%. Findings indicate that the new approach could potentially be applied to monitor snow depths and may serve as a reference for building multi-system and multi-frequency global navigation satellite system reflectometry models.
机译:雪不仅是水文循环中的关键存储组件,而且是气候研究的重要数据;然而,降雪观察只会稀疏。最近应用了信噪比(SNR)用于传感雪深。大多数研究仅考虑全球定位系统(GPS)L1或L2 SNR数据。在目前的研究中,使用多径反射测量仪和GPS三频(即L1,L2和L5)信号的多径反射测量和SNR组合来提出新的雪深度估计方法。 SNR组合方法描述了天线高度变化与光谱峰值频率之间的关系。从Yel2和Kiru站点的SNR组合数据检索雪深,并通过与原位观察进行比较验证。仰角范围为5°至25°。两个站点的相关性为0.99和0.97。通过将其与现有模型进行比较来评估新方法的性能。所提出的方法呈现高0.95的相关性,精度(在根均方误差方面)的准确性超过30%。调查结果表明,新方法可能适用于监控雪深度,并可作为构建多系统和多频全球导航卫星系统反射模型的参考。

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