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Real-time detection and repair of cycle slips in triple-frequency GNSS measurements

机译:在三频GNSS测量中实时检测和修复周跳

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Cycle slip detection and repair are prerequisites to the use of the global navigation satellite system (GNSS) carrier phases for precise positioning. Modern GNSS techniques introduce triple- or multi-frequency signals that are beneficial for cycle slip detection and repair. We present a new real-time cycle slip detection and repair method based on the independent linear combinations of undifferenced triple-frequency GNSS observations. The proposed method forms three types of linear combinations based on the original observations. These combinations are called extra-wide lane (EWL), wide lane (WL), and narrow lane (NL). Cycle slips on the combinations are determined sequentially in three cascaded steps. The first step employs the geometry-free and ionosphere-free Hatch-Melbourne-Wubbena combination to determine and repair the EWL cycle slips. The second step subtracts the cycle-slip-repaired EWL combination from the WL combination to eliminate the geometry part of the WL combination. This subtraction results in a new function that contains the WL ambiguity and residual ionospheric delay. This function is differenced at two consecutive epochs to determine the WL cycle slips. The residual ionospheric delay difference is ignored because of its small magnitude relative to WL wavelength. The third step determines the NL cycle slips in the same manner as in the second step. The difference is that the cycle-slip-repaired EWL combination is replaced with the more accurate cycle-slip-repaired WL combination. Moreover, the residual ionospheric delay difference is compensated by the ionospheric delay rate derived from the original carrier phase observations. When the EWL, WL, and NL cycle slips are determined, cycle slips on the original carrier phase observations can be uniquely identified. The proposed approach has been tested on 30-s triple-frequency BeiDou navigation satellite system data under different levels of ionospheric variations, and on 30-s triple-frequency global positioning system and quasi-zenith satellite system data. Results indicate that the approach can effectively detect and correct cycle slips even for one cycle under low sampling rate or active ionospheric conditions on each frequency in real time.
机译:周期滑移检测和维修是使用全球导航卫星系统(GNSS)载波相位进行精确定位的前提条件。现代GNSS技术引入了三频或多频信号,这对于循环滑移检测和修复非常有用。我们基于无差异三频GNSS观测值的独立线性组合,提出了一种新的实时周期滑移检测和修复方法。所提出的方法基于原始观察结果形成了三种类型的线性组合。这些组合称为超宽车道(EWL),宽车道(WL)和窄车道(NL)。在三个级联步骤中顺序确定组合的周跳。第一步采用无几何形状和无电离层的Hatch-Melbourne-Wubbena组合来确定和修复EWL循环滑移。第二步从WL组合中减去周期滑移修复的EWL组合,以消除WL组合的几何部分。这种减法产生了一个新功能,其中包含WL模糊度和电离层残留延迟。此功能在两个连续的时期相差以确定WL周期转差。由于相对于WL波长的幅度较小,因此忽略了电离层剩余延迟差。第三步以与第二步相同的方式确定NL循环转差。不同之处在于,用更精确的周期滑动修复的WL组合代替了周期滑动修复的EWL组合。此外,剩余的电离层延迟差由原始载波相位观测值导出的电离层延迟率补偿。确定了EWL,WL和NL循环滑移后,就可以唯一地识别原始载波相位观测值上的循环滑移。在不同电离层变化水平下,对30 s三频北斗导航卫星系统数据,30 s三频全球定位系统和准天顶卫星系统数据进行了测试。结果表明,该方法即使在低采样率或活跃电离层条件下,在每个频率上实时实时检测和纠正一个周期也是如此。

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