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Hybrid global navigation satellite systems, differential navigation satellite systems and time of arrival cooperative positioning based on iterative finite difference particle filter

机译:基于迭代有限差分粒子滤波的混合全球导航卫星系统,差分导航卫星系统和到达时间协同定位

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摘要

In this study, the authors develop a novel solution for hybrid global navigation satellite systems, differential navigation satellite systems and time of arrival cooperative positioning (CP) based on iterative finite difference particle filter (PF) in GNSS-terrestrial navigation and challenging environments. A variant of finite difference filters called divided difference filter (DDF) was used as an importance density for particle generation. Various proposal distributions have been proposed to improve the performance of PF, but practical situations have encouraged the researchers to design better candidate for proposal distributions in order to gain better performance especially for hybrid CP system. The author's proposed method named hybrid cooperative particle-based DDF solves the problem of linearisation of non-linear functions that are based on Jacobian matrices which often cannot be applied in practical applications of non-linear estimation techniques. An iterative reweighted information filter based on the extended Kalman filter (KF) was integrated during the measurement update phase to smooth the output of the DDF used for particles update. Simulation results based on a realistic outdoor scenario show that the proposed solution outperforms some well-known state-of-the-art in hybrid CP systems, such as hybrid cooperative unscented KF in terms of accuracy and availability and provides good performance even in challenging conditions.
机译:在这项研究中,作者基于GNSS地面导航和挑战性环境中的迭代有限差分粒子滤波(PF),为混合全球导航卫星系统,差分导航卫星系统和到达时间协同定位(CP)开发了一种新颖的解决方案。有限差分滤波器的一种变体称为除差滤波器(DDF)被用作粒子生成的重要密度。为了提高PF的性能,已经提出了各种建议分布,但是实际情况鼓励研究人员设计更好的候选方案来获得建议分布,以便获得更好的性能,特别是对于混合CP系统。作者提出的名为基于混合合作粒子的DDF的方法解决了基于Jacobian矩阵的非线性函数线性化的问题,该问题通常无法在非线性估计技术的实际应用中应用。在测量更新阶段集成了基于扩展卡尔曼滤波器(KF)的迭代重加权信息滤波器,以平滑用于粒子更新的DDF的输出。基于实际室外场景的仿真结果表明,所提出的解决方案在混合性CP系统方面优于一些众所周知的最新技术,例如,在精度和可用性方面,混合无味KF混合型,即使在挑战性条件下也能提供良好的性能。

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