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Improving the Topside Profile of Ionosonde with TEC Retrieved from Spaceborne Polarimetric SAR

机译:利用星载极化SAR提取的TEC改善离子探空仪的顶面剖面

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摘要

Signals from spaceborne polarimetric synthetic aperture radar will suffer from Faraday rotations when they propagate through the ionosphere, especially those at L-band or lower frequencies, such as signals from the Phased Array type L-band Synthetic Aperture Radar (PALSAR). For this reason, Faraday rotation compensation should be considered. On the other hand, Faraday rotation could also be retrieved from distorted echoes. Moreover, combining Faraday rotation with the radar parameters and the model of magnetic field, we could derive the total electron content (TEC) along the signal path. Benefiting from the high spatial resolution of the SAR system, TEC obtained from PALSAR could be orders of magnitude higher in spatial resolution than that from GPS. Besides, we demonstrated that the precision of TEC from PALSAR is also much higher than that from GPS. With the precise TEC available, we could fuse it with data from other ionosphere detection devices to improve their performances. In this paper, we adopted it to help modify the empirically modeled topside profile of ionosonde. The results show that the divergence between the modified profile and the referenced incoherent scattering radar profile reduced by about 30 percent when compared to the original ionosonde topside profile.
机译:当来自星载极化合成孔径雷达的信号通过电离层传播时,尤其是在L波段或较低频率的信号,它们将遭受法拉第旋转的影响,例如相控阵L波段合成孔径雷达(PALSAR)的信号。因此,应考虑法拉第旋转补偿。另一方面,法拉第旋转也可以从扭曲的回波中获取。此外,结合法拉第旋转与雷达参数和磁场模型,我们可以得出沿信号路径的总电子含量(TEC)。得益于SAR系统的高空间分辨率,从PALSAR获得的TEC的空间分辨率可能比GPS的空间分辨率高几个数量级。此外,我们证明了PALSAR的TEC精度​​也远高于GPS的精度。利用可用的精确TEC,我们可以将其与其他电离层检测设备的数据融合在一起,以改善其性能。在本文中,我们采用它来帮助修改基于经验建模的离子探空仪的顶面剖面。结果表明,与原始的离子探空仪顶侧剖面相比,修改后的剖面与参考非相干散射雷达剖面之间的差异减少了约30%。

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