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Basmag: An Optimized HMM-Based Localization System Using Backward Sequences Matching Algorithm Exploiting Geomagnetic Information

机译:Basmag:使用后向序列匹配算法的基于HMM的优化定位系统,利用地磁信息

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摘要

Due to the complex building construction materials, the geomagnetic field has great anomalies in indoor environments. These anomalies generate distinctive signatures corresponding to positions. Many hybrid localization schemes that combine geomagnetic information and pedestrian dead reckoning (PDR) have been proposed. In this paper, we regard these distinctive geomagnetic anomalies as fingerprints for high precision indoor positioning. In order to improve the hybrid localization accuracy, we present Basmag, a robust hidden Markov model (HMM)-based indoor localization system, and we also propose a backward sequences matching algorithm (BSMA) to optimize the HMM. In order to improve the low discernibility of single geomagnetic signal, we vectorize the backward consecutive geomagnetic signals to fingerprint sequences with the help of PDR. We match the backward sequences with a pre-constructed fingerprint database to get more precise transition probabilities in HMM. We conducted a theoretical analysis of the feasibility of the BSMA. Extensive simulation results show that Basmag can achieve high-accuracy positioning. Finally, we conducted experiments performed on a smartphone in an indoor area to compare Basmag with other geomagnetic field-based and WiFi-based localization methods, and the experimental results verify the effectiveness and robustness among users with different walking styles of Basmag.
机译:由于建筑材料复杂,地磁场在室内环境中存在很大的异常。这些异常会产生与位置相对应的独特特征。已经提出了许多结合了地磁信息和行人航位推算(PDR)的混合定位方案。在本文中,我们将这些独特的地磁异常视为高精度室内定位的指纹。为了提高混合定位精度,我们提出了一种基于鲁棒隐马尔可夫模型(HMM)的室内定位系统Basmag,并提出了一种向后序列匹配算法(BSMA)来优化HMM。为了提高单个地磁信号的低分辨力,我们借助PDR将反向连续的地磁信号矢量化为指纹序列。我们将反向序列与预先构建的指纹数据库匹配,以在HMM中获得更精确的转换概率。我们对BSMA的可行性进行了理论分析。大量的仿真结果表明,Basmag可以实现高精度定位。最后,我们在室内智能手机上进行了实验,将Basmag与其他基于地磁场和WiFi的定位方法进行了比较,实验结果验证了Basmag不同步行方式的用户的有效性和鲁棒性。

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