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Estimation of LEO-GPS receiver differential code bias based on inequality constrained least square and multi-layer mapping function

机译:基于不等式约束最小二乘和多层映射函数的Leo-GPS接收器差异偏置的估计

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The differential code bias (DCB) of the global navigation satellite system (GNSS) receiver onboard a low earth orbit (LEO) satellite is one of the crucial hardware error sources in ionospheric estimation. In common practice, LEO DCBs are considered as constant within a single day. However, since such receivers are installed on moving platforms, they are subjected to the ever-changing space environment, and thus, LEO DCBs are prone to more frequent fluctuations than receiver DCBs of ground GNSS stations. We estimate the LEO GPS receiver DCBs and plasmaspheric vertical total electron content by using inequality constrained least square and a multi-layer mapping function (MF) approach to minimize mapping errors. The GPS receiver DCBs onboard constellation observing system for meteorology, ionosphere, and climate satellites (COSMIC) is investigated and analyzed during the January 2008 period. The results show that in most cases the multi-layer MF approach performs better than the commonly used single-layer MF. The mapping error from an inaccurately fixed single-layer height can be considerably reduced. Meanwhile, with the help of a multi-layer MF, the mean deviations of DCBs for five receivers compared with those based on a geometric MF at 1400 km are significantly decreased by 59%, 15%, 26%, 47%, and 22%, respectively.
机译:在低地球轨道(LEO)卫星上的全局导航卫星系统(GNSS)接收器的差分额定偏差(GNSS)接收器是电离层估计中的重要硬件误差源之一。在常见的做法中,Leo DCB在一天内被认为是常数。然而,由于这些接收器安装在移动平台上,因此它们经受变化的空间环境,因此,Leo DCBS比接地GNSS站的接收器DCBS更频繁地波动。我们通过使用不等式约束最小二乘和多层映射函数(MF)方法来估计Leo GPS接收器DCB和Plasmaspheric垂直总电子含量以最小化映射误差。在2008年1月期间,研究并分析了气象,电离层和气候卫星(宇宙)的GPS接收器DCBS观察系统。结果表明,在大多数情况下,多层MF方法比常用的单层MF更好地执行。可以显着降低来自不准确的单层高度的映射错误。同时,在多层MF的帮助下,与基于1400公里的几何MF的基于几何MF的那些相比,DCB对五个接收器的平均偏差显着降低了59%,15%,26%,47%和22% , 分别。

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