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A New Method for Single-Epoch Ambiguity Resolution with Indoor Pseudolite Positioning

机译:室内伪卫星定位的单点歧义解算新方法

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Ambiguity resolution (AR) is crucial for high-precision indoor pseudolite positioning. Due to the existing characteristics of the pseudolite positioning system, such as the geometry structure of the stationary pseudolite which is consistently invariant, the indoor signal is easy to interrupt and the first order linear truncation error cannot be ignored, and a new AR method based on the idea of the ambiguity function method (AFM) is proposed in this paper. The proposed method is a single-epoch and nonlinear method that is especially well-suited for indoor pseudolite positioning. Considering the very low computational efficiency of conventional AFM, we adopt an improved particle swarm optimization (IPSO) algorithm to search for the best solution in the coordinate domain, and variances of a least squares adjustment is conducted to ensure the reliability of the solving ambiguity. Several experiments, including static and kinematic tests, are conducted to verify the validity of the proposed AR method. Numerical results show that the IPSO significantly improved the computational efficiency of AFM and has a more elaborate search ability compared to the conventional grid searching method. For the indoor pseudolite system, which had an initial approximate coordinate precision better than 0.2 m, the AFM exhibited good performances in both static and kinematic tests. With the corrected ambiguity gained from our proposed method, indoor pseudolite positioning can achieve centimeter-level precision using a low-cost single-frequency software receiver.
机译:模糊度分辨率(AR)对于高精度室内伪卫星定位至关重要。由于伪卫星定位系统的现有特性,例如固定伪卫星的几何结构始终不变,室内信号易于中断,一阶线性截断误差不容忽视,因此,一种新的基于AR的AR方法提出了模糊函数法(AFM)的思想。所提出的方法是单周期非线性方法,特别适合于室内伪卫星定位。考虑到传统原子力显微镜的计算效率非常低,我们采用改进的粒子群算法(IPSO)在坐标域中寻找最佳解,并进行最小二乘方差调整以确保解算不确定性的可靠性。为了验证所提出的AR方法的有效性,进行了一些实验,包括静态和运动学测试。数值结果表明,与传统的网格搜索方法相比,IPSO大大提高了AFM的计算效率,并且具有更精细的搜索能力。对于初始伪坐标精度优于0.2 m的室内伪卫星系统,原子力显微镜在静态和运动学测试中均显示出良好的性能。通过从我们提出的方法中获得的校正模糊度,室内伪卫星定位可以使用低成本的单频软件接收器实现厘米级的精度。

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