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A Hybrid Method to Improve the BLE-Based Indoor Positioning in a Dense Bluetooth Environment

机译:一种改善密集蓝牙环境中基于BL的室内定位的混合方法

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摘要

Indoor positioning using Bluetooth Low Energy (BLE) beacons has attracted considerable attention after the release of the BLE protocol. A number of efforts have been exerted to improve the performance of BLE-based indoor positioning. However, few studies pay attention to the BLE-based indoor positioning in a dense Bluetooth environment, where the propagation of BLE signals become more complex and more fluctuant. In this paper, we draw attention to the problems resulting from the dense Bluetooth environment, and it turns out that the dense Bluetooth environment would result in a high received signal strength indication (RSSI) variation and a longtime interval collection of BLE. Hence, to mitigate the effects of the dense Bluetooth environment, we propose a hybrid method fusing sliding-window filtering, trilateration, dead reckoning and the Kalman filtering method to improve the performance of the BLE indoor positioning. The Kalman filter is exploited to merge the trilateration and dead reckoning. Extensive experiments in a real implementation are conducted to examine the performance of three approaches: trilateration, dead reckoning and the fusion method. The implementation results proved that the fusion method was the most effective method to improve the positioning accuracy and timeliness in a dense Bluetooth environment. The positioning root-mean-square error (RMSE) calculation results have showed that the hybrid method can achieve a real-time positioning and reduce error of indoor positioning.
机译:使用蓝牙低能量(BLE)信标在释放BLE协议后,使用蓝牙低能(BLE)的室内定位引起了相当大的关注。已经施加了许多努力,提高了基于BLE的室内定位的性能。然而,很少有研究在密集的蓝牙环境中关注基于BL的室内定位,其中BLE信号的传播变得更加复杂,更波峰。在本文中,我们注意到密集蓝牙环境引起的问题,事实证明,密集的蓝牙环境将导致高接收的信号强度指示(RSSI)变化和BLE的长时间间隔集合。因此,为了减轻致密蓝牙环境的影响,我们提出了一种混合方法熔化滑动窗滤波,三边形,死亡估算和卡尔曼滤波方法,以提高凸台室内定位的性能。 Kalman筛选器被剥削以合并Trirateration和DEAD RECKONING。进行了实际实施中的广泛实验,以检查三种方法的性能:三边形,死亡的估算和融合方法。实施结果证明,融合方法是提高密集蓝牙环境中定位精度和及时性的最有效方法。定位根均方误差(RMSE)计算结果表明,混合方法可以实现实时定位和减少室内定位误差。

著录项

  • 作者

    Ke Huang; Ke He; Xuecheng Du;

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  • 年度 2019
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  • 原文格式 PDF
  • 正文语种 eng
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