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Spatial Skeleton-Enhanced Location Tracking for Indoor Localization

机译:用于室内定位的空间骨架增强位置跟踪

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Map information can assist indoor localization to avoid improbable cases and achieve accurate location estimation. In this paper, we proposed a automatic method to extract useful information from indoor map as spatial skeleton database (SSD). Based on conventional probabilistic fingerprinting technique and particle filter tracking algorithm, we also proposed spatial skeleton-based dynamic probabilistic fingerprinting database (S-DFD) to filter out reference points (RPs) in fingerprinting database according to the previous target location and the walking distance between RPs. Finally, we proposed a spatial skeleton-based particle filter tracking (S-PT) which use SSD to construct realistic transition model. According to the experiment result, the whole system consists of SSD, S-DFD and S-PT called spatial skeleton-enhanced location tracking for indoor localization (SELT) can achieve accurate location estimation.
机译:地图信息可以帮助室内定位,以免发生不可能的情况并实现准确的位置估计。在本文中,我们提出了一种自动方法,可以从室内地图中提取有用的信息作为空间骨架数据库(SSD)。基于传统的概率指纹技术和粒子滤波跟踪算法,我们还提出了基于空间骨架的动态概率指纹数据库(S-DFD),根据先前的目标位置和目标之间的步行距离,过滤出指纹数据库中的参考点(RPs)。 RPs。最后,我们提出了一种基于空间骨架的粒子滤波跟踪(S-PT),该跟踪使用SSD来构建现实的过渡模型。根据实验结果,整个系统由SSD,S-DFD和S-PT组成,称为用于室内定位的空间骨架增强位置跟踪(SELT),可以实现准确的位置估计。

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