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Two-step calibration for UWB-based indoor positioning system and positioning filter considering channel common bias

机译:考虑通道常见偏置的基于UWB的室内定位系统和定位过滤器的两步校准

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摘要

The channel error for ranging-based positioning generally considers the scale-factor error and bias. In this paper, the installation location error of anchor nodes (ANs) is additionally considered. To estimate these errors independently, a two-step calibration method is proposed. However, bias may vary depending on the changing indoor environment due to the non-line-of-sight error. Therefore, it is necessary to estimate bias in real-time at the positioning step. In this paper, a channel common bias (CCB) is defined, and a filter that can estimate not only the location of the mobile node but also the CCB is designed based on cubature Kalman filter (CICF). Experimental results show that the proposed two-step calibration method can accurately estimate scale-factor error and bias per channel, and location errors of all ANs. Also, it shows that the proposed CKF-based positioning filter considering CCB has faster channel error estimation performance than the filter considering channel-specific bias.
机译:基于范围的定位的信道误差通常考虑比例因子误差和偏置。在本文中,还考虑了锚节点(ANS)的安装位置误差。要独立估计这些误差,提出了一种两步校准方法。然而,偏差可能因非瞄准误差而导致的室内环境变化而变化。因此,有必要在定位步骤中实时估计偏差。在本文中,定义了通道公共偏差(CCB),并且不仅可以仅基于Cubature Kalman滤波器(CICF)而设计的滤波器,而且可以估计CCB的滤波器。实验结果表明,所提出的两步校准方法可以准确地估计每个通道的比例因子误差和偏置,以及所有ANS的位置误差。此外,它表明,考虑CCB的基于CKF的定位滤波器的频道误差估计性能比考虑到频道特定的偏差的滤波器更快。

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