基于指纹识别和行人航位推算的城市导航隐马尔可夫模型

J. Seitz, Thorsten Vaupel, J. Jahn, S. Meyer, J. G. Boronat, J. Thielecke
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引用次数: 68

摘要

提出了一种室内和城市峡谷环境下的行人导航算法。它考虑了低处理能力和低成本传感器的平台。采用了基于隐马尔可夫模型的Wi-Fi定位和航位推算相结合的方法。Wi-Fi指纹在数据库中的位置被用作隐藏状态。在状态转换时进行航位推算,在测量更新时对Wi-Fi信号强度测量值进行数据库关联。航位推算包括加速度计驱动的步长估计和基于磁场的航向计算。仿真和测试表明,这种方法可以解决Wi-Fi定位中常见的歧义,并可以桥接中断。因此,可以达到更高的精度和鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Hidden Markov Model for urban navigation based on fingerprinting and pedestrian dead reckoning
An algorithm for pedestrian navigation in indoor and urban canyon environments is presented. It considers platforms with low processing power and low-cost sensors. A combination of Wi-Fi positioning and dead reckoning, based on a Hidden Markov Model, is used. The positions of the Wi-Fi fingerprints in the database are used as hidden states. Dead reckoning is taken for state transition and a database correlation of the Wi-Fi signal strength measurements is performed in the measurement update. The dead reckoning consists of an accelerometer driven step length estimation and a magnetic field based heading calculation. Simulations and tests demonstrate that in this way ambiguities common in Wi-Fi positioning can be solved and outages can be bridged. Therefore, higher accuracy and robustness can be achieved.
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