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首页> 外文期刊>International Journal of Distributed Sensor Networks >Toward improving indoor magnetic field–based positioning system using pedestrian motion models
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Toward improving indoor magnetic field–based positioning system using pedestrian motion models

机译:利用行人运动模型改善基于室内磁场的定位系统

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Indoor magnetic field has attracted considerable attention in indoor location–based services, because of its pervasive and stable attributes. Generally, in order to harness the location features of the magnetic field, particle filters are introduced to simulate the possibilities of user locations. Real-time magnetic field fingerprints are matched with model fingerprints to adjust the location possibilities. However, the computation overheads of the magnetic matching are rather high, thus limiting their applications to mobile computing platforms and indoor location–based service providers that serve massive users. In order to reduce the computation overhead, the article presents a low-cost magnetic field fingerprint matching scheme. Based on the low-frequency features of the magnetic field, the scheme updates particle weights according to the mass center of the magnetic field deltas of pedestrian steps. The proposed low-cost scheme decreases the complexity of real-time fingerprints without harming the positioning performance. In order to further improve the positioning accuracy, not asking users to hold the smartphone in fixed attitudes, we also present a smartphone attitude detection method that enables the proposed scheme to automatically select proper fingerprints. Experiments convincingly reveal that the proposed scheme achieves about 1?m accuracy at 80% with low computation overheads.
机译:由于室内磁场的普遍性和稳定性,室内磁场在室内定位服务中引起了极大的关注。通常,为了利用磁场的位置特征,引入了粒子过滤器来模拟用户位置的可能性。实时磁场指纹与模型指纹匹配,以调整位置可能性。但是,磁性匹配的计算开销非常高,因此将其应用限制在为大量用户提供服务的移动计算平台和基于室内位置的服务提供商中。为了减少计算开销,本文提出了一种低成本的磁场指纹匹配方案。该方案基于磁场的低频特征,根据行人台阶的磁场增量的质心更新粒子权重。所提出的低成本方案在不损害定位性能的情况下降低了实时指纹的复杂性。为了进一步提高定位精度,而不是要求用户以固定姿势握住智能手机,我们还提出了一种智能手机姿势检测方法,该方法使所提出的方案能够自动选择合适的指纹。实验令人信服地表明,所提出的方案以低的计算开销在80%的精度下达到了约1μm。

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