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MSE-impact of PPP-RTK ZTD estimation strategies

机译:PPP-RTK ZTD估算策略的MSE影响

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In PPP-RTK network processing, the wet component of the zenith tropospheric delay (ZTD) cannot be precisely modelled and thus remains unknown in the observation equations. For small networks, the tropospheric mapping functions of different stations to a given satellite are almost equal to each other, thereby causing a near rank-deficiency between the ZTDs and satellite clocks. The stated near rank-deficiency can be solved by estimating the wet ZTD components relatively to that of the reference receiver, while the wet ZTD component of the reference receiver is constrained to zero. However, by increasing network scale and humidity around the reference receiver, enlarged mismodelled effects could bias the network and the user solutions. To consider both the influences of the noise and the biases, the mean-squared errors (MSEs) of different network and user parameters are studied analytically employing both the ZTD estimation strategies. We conclude that for a certain set of parameters, the difference in their MSE structures using both strategies is only driven by the square of the reference wet ZTD component and the formal variance of its solution. Depending on the network scale and the humidity condition around the reference receiver, the ZTD estimation strategy that delivers more accurate solutions might be different. Simulations are performed to illustrate the conclusions made by analytical studies. We find that estimating the ZTDs relatively in large networks and humid regions (for the reference receiver) could significantly degrade the network ambiguity success rates. Using ambiguity-fixed network-derived PPP-RTK corrections, for networks with an inter-station distance within 100 km, the choices of the ZTD estimation strategy is not crucial for single-epoch ambiguity-fixed user positioning. Using ambiguity-float network corrections, for networks with inter-station distances of 100, 300 and 500 km in humid regions (for the reference receiver), the root-mean-squared errors (RMSEs) of the estimated user coordinates using relative ZTD estimation could be higher than those under the absolute case with differences up to millimetres, centimetres and decimetres, respectively.
机译:在PPP-RTK网络处理中,天顶对流层延迟(ZTD)的湿分量无法精确建模,因此在观测方程中仍然未知。对于小型网络,不同站点到给定卫星的对流层映射功能几乎彼此相等,从而导致ZTD与卫星时钟之间的秩差接近。可以通过相对于参考接收机的湿ZTD分量估计湿ZTD分量,而参考接收机的湿ZTD分量约束为零来解决所述的接近秩不足。但是,通过增加参考接收器周围的网络规模和湿度,扩大的误建模效应可能会使网络和用户解决方案产生偏差。为了同时考虑噪声和偏差的影响,使用ZTD估计策略对不同网络和用户参数的均方误差(MSE)进行了分析研究。我们得出结论,对于某些参数集,使用这两种策略的MSE结构差异仅由参考湿ZTD分量的平方和其解的形式方差决定。根据网络规模和参考接收机周围的湿度条件,提供更准确解决方案的ZTD估算策略可能会有所不同。进行模拟以说明分析研究得出的结论。我们发现,相对于大型网络和潮湿区域(对于参考接收器)估计ZTD可能会大大降低网络歧义成功率。对于站间距离在100?km以内的网络,使用不确定度固定的网络得出的PPP-RTK校正,ZTD估计策略的选择对于单历时不确定度固定的用户定位并不是至关重要的。使用歧义浮点网络校正,对于在潮湿地区站间距离为100、300和500 km的网络(对于参考接收机),使用相对ZTD估计来估计用户坐标的均方根误差(RMSE)可能高于绝对情况下的差异,差异分别达到毫米,厘米和十亿分之一。

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