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A Simplified Baseband Prefilter Model with Adaptive Kalman Filter for Ultra-Tight COMPASS/INS Integration

机译:用于超紧COMPASS / INS集成的带有自适应卡尔曼滤波器的简化基带预滤波器模型

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摘要

COMPASS is an indigenously developed Chinese global navigation satellite system and will share many features in common with GPS (Global Positioning System). Since the ultra-tight GPS/INS (Inertial Navigation System) integration shows its advantage over independent GPS receivers in many scenarios, the federated ultra-tight COMPASS/INS integration has been investigated in this paper, particularly, by proposing a simplified prefilter model. Compared with a traditional prefilter model, the state space of this simplified system contains only carrier phase, carrier frequency and carrier frequency rate tracking errors. A two-quadrant arctangent discriminator output is used as a measurement. Since the code tracking error related parameters were excluded from the state space of traditional prefilter models, the code/carrier divergence would destroy the carrier tracking process, and therefore an adaptive Kalman filter algorithm tuning process noise covariance matrix based on state correction sequence was incorporated to compensate for the divergence. The federated ultra-tight COMPASS/INS integration was implemented with a hardware COMPASS intermediate frequency (IF), and INS's accelerometers and gyroscopes signal sampling system. Field and simulation test results showed almost similar tracking and navigation performances for both the traditional prefilter model and the proposed system; however, the latter largely decreased the computational load.
机译:COMPASS是中国本土开发的全球导航卫星系统,将具有与GPS(全球定位系统)相同的许多功能。由于超紧密的GPS / INS(惯性导航系统)集成在许多情况下都显示出优于独立GPS接收器的优势,因此本文特别研究了联合的超紧密COMPASS / INS集成,并提出了一种简化的预滤波器模型。与传统的预滤波器模型相比,此简化系统的状态空间仅包含载波相位,载波频率和载波频率速率跟踪误差。两象限反正切鉴别器输出用作测量值。由于从传统预滤波器模型的状态空间中排除了与代码跟踪错误相关的参数,因此代码/载波的发散会破坏载波跟踪过程,因此将基于状态校正序列的自适应卡尔曼滤波器算法调整过程噪声协方差矩阵纳入了该算法。补偿差异。联合的超紧密COMPASS / INS集成是通过硬件COMPASS中频(IF)以及INS的加速度计和陀螺仪信号采样系统实现的。现场和模拟测试结果表明,对于传统的预过滤器模型和所提出的系统,跟踪和导航性能几乎相似。但是,后者大大减少了计算量。

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