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Comparing reflection signatures in radio occultation measurements using the full spectrum inversion and phase matching methods

机译:使用全谱反转和相位匹配方法比较无线电掩星测量的反射签名

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Global Navigation Satellite System radio occultation (GNSS-RO) is an important technique used to sound the Earth's atmosphere and provide data products to numerical weather prediction (NWP) systems as well as to climate research. It provides a high vertical resolution and SI-traceability that are both valuable complements to other Earth observation systems. In addition to direct components refracted in the atmosphere, many received RO signals contain reflected components thanks to the specular and relatively smooth characteristics of the ocean. These reflected components can interfere the retrieval of the direct part of the signal, and can also contain meteorological information of their own, e.g., information about the refractivity at the Earth's surface. While the conventional method to detect such reflections is by using radio-holographic methods, it has been shown that it is possible to see reflections using wave optics inversion, specifically while inspecting the amplitude of the output of phase matching (PM). The primary objective of this paper is to analyze the appearance of these reflections in the amplitude output from another wave optics algorithm, namely the much faster full spectrum inversion (FSI). PM and FSI are closely related algorithms-they both use the method of stationary phase to derive the bending angle from a measured signal. We apply our own implementation of FSI to the same GNSS-RO measurements that PM was previously applied to and show that the amplitudes of the outputs again indicate reflection in the surface of the ocean. Our results show that the amplitudes output from the FSI and PM algorithms are practically identical and that the reflection signatures thus appear equally well.
机译:全球导航卫星系统无线电掩星(GNSS-RO)是用于声音地球大气的重要技术,并为数值天气预报(NWP)系统以及气候研究提供数据产品。它提供了高垂直分辨率和Si-可追溯性,既有价值对其他地球观测系统也是有价值的补充。除了在大气中折射的直接组件之外,由于海洋的镜面和相对平滑的特性,许多所接收的RO信号含有反射组件。这些反射组件可以干扰信号的直接部分的检索,并且还可以包含它们自己的气象信息,例如,有关地球表面的折射率的信息。虽然通过使用无线电全息方法来检测这种反射的传统方法,但已经示出了可以使用波光学反转来看看反射,特别是在检查相位匹配的输出(PM)的幅度的同时。本文的主要目的是分析来自另一波光光学算法的幅度输出中的这些反射的外观,即全频谱反转(FSI)的速度更快。 PM和FSI是密切相关的算法 - 它们都使用静止阶段的方法来从测量信号导出弯曲角度。我们将自己的FSI实施到同样的GNSS-RO测量结果,以前PM先前应用于并表明输出的幅度再次表示海洋表面的反射。我们的结果表明,FSI和PM算法输出的幅度实际上是相同的,因此反射签名同样好。

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