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Performance analysis of dual-frequency receiver using combinations of GPS L1, L5, and L2 civil signals

机译:使用GPS L1,L5和L2民用信号组合的双频接收机的性能分析

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Processing of GNSS signals from more than one frequency band enhances the accuracy and integrity of a position solution in both standalone and differential positioning. The modern GPS program and newly launched GNSS systems such as GALILEO, BeiDou allow civilians to access signals from multiple frequencies in the L-band spectrum. While there are some advantages in triple-frequency processing in carrier phase applications, in general most of the standalone kinematic receivers get benefit from dual-frequency signals for ionosphere error correction. In implementing a dual-frequency receiver, it is necessary to select a combination of frequencies leading to an optimum performance of the existing civilian signals. In the current research work, we have analyzed the performance of dual-frequency receiver in terms of combined signal observation noise, sensitivity and robustness using analytical models by taking the combination of GPS L1, L2C and L5 signals as an example. Further, we have investigated the benefits of common Doppler estimate-based two-frequency signal tracking to reduce the noise in linear combination of observations. Through analytical and experimental results, it is confirmed that the L1/L5 signal combination in GPS system has low observation noise, which is suitable to use in high accuracy and precise positioning applications using standalone dual-frequency receiver. Further, it is shown that common Doppler estimate-based dual-frequency signal tracking has improved receiver tracking loop performance in terms of observation noise and multipath in linear combination of observations and enhanced receiver sensitivity and robustness. In GPS system, L1/L5 signals processed using common Doppler estimate-aided two-frequency signal tracking architecture, it is possible to effectively mitigate ionosphere delay and other receiver observation errors, to achieve less than 1m position accuracy using unambiguous code phase observations. Proposed analysis is applicable of finding an optimal two-frequency signal combination in multi-frequency GNSS system and suitable signal processing architecture to obtain high accuracy and precise ionosphere-free position solution using code phase observations in standalone dual-frequency receiver.
机译:对来自多个频带的GNSS信号进行处理可提高独立定位和差分定位中定位解决方案的准确性和完整性。现代的GPS程序和新推出的GNSS系统(如GALILEO,北斗)使平民能够访问L波段频谱中多个频率的信号。尽管在载波相位应用中三频处理具有一些优势,但通常大多数独立运动接收器都可从双频信号中受益,以进行电离层误差校正。在实现双频接收机时,必须选择导致现有民用信号最佳性能的频率组合。在当前的研究工作中,我们以GPS L1,L2C和L5信号的组合为例,使用分析模型分析了组合信号观测噪声,灵敏度和鲁棒性方面的双频接收机性能。此外,我们研究了基于多普勒估计的常见两频信号跟踪在线性观测组合中减少噪声的好处。通过分析和实验结果,可以确定GPS系统中的L1 / L5信号组合具有较低的观察噪声,适用于使用独立双频接收机的高精度和精确定位应用。进一步地,示出了在基于观察的线性组合的观察噪声和多径方面,普通的基于多普勒估计的双频信号跟踪具有改善的接收器跟踪环路性能,并且增强了接收器灵敏度和鲁棒性。在GPS系统中,使用通用多普勒估计辅助的双频信号跟踪架构处理的L1 / L5信号,可以有效地减轻电离层延迟和其他接收器观测误差,并使用明确的代码相位观测来实现小于1m的位置精度。提出的分析适用于在多频GNSS系统中找到最佳的两频信号组合以及合适的信号处理架构,以在独立双频接收机中使用码相位观测来获得高精度和精确的无电离层位置解。

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