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A new triple-frequency cycle slip detecting algorithm validated with BDS data

机译:利用BDS数据验证了一种新的三频周跳检测算法

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Triple-frequency global navigation satellite systems allow the introduction of additional linear observation combinations. We define two geometry-free phase combinations and one geometry-free pseudorange minus phase linear combination to detect and correct cycle slip in real time. At first, the optimal BDS (BeiDou System) triple-frequency geometry-free phase combinations are selected for cycle slip detection. Then, a detailed analysis of the cycle slip detection is performed by examining whether some special cycle slip groups cannot be discovered by the selected combinations. Since there still remain some cycle slip groups undetectable by the two geometry-free phase combinations, we add a pseudorange minus phase linear combination which is linearly independent with these two phase combinations, to be sure that all the cycle slips can be detected. After that, an effective decorrelation search based on LAMBDA and least squares minimum principle is applied to calculate and determine the cycle slips. The method has been tested on triple-frequency undifferenced BDS data coming from a benign observation environment. Results show that the proposed method is able to detect and repair all the small cycle slips in the three carriers.
机译:三频全球导航卫星系统允许引入其他线性观测组合。我们定义了两种无几何形状的相位组合和一种无几何形状的伪距减相位线性组合,以实时检测和校正周跳。首先,选择最佳的BDS(北斗系统)三频无几何相位组合进行周跳检测。然后,通过检查是否通过选择的组合不能发现一些特殊的循环滑移组来对循环滑移检测进行详细的分析。由于仍然存在一些无法通过两个无几何形状的相位组合检测到的周期滑移组,因此我们添加了一个伪距减相位线性组合,该线性范围与这两个相位组合线性无关,以确保可以检测到所有周期滑移。然后,基于LAMBDA和最小二乘最小原理的有效去相关搜索被用于计算和确定循环滑移。该方法已在来自良性观察环境的三频无差异BDS数据上进行了测试。结果表明,该方法能够检测和修复三个载波中的所有小周跳。

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