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A Novel Adaptive Radio-Map for RSS-Based Indoor Positioning

机译:基于RSS的室内定位的新型自适应无线电地图

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Wireless positioning in indoor environment is growing rapidly with the development of location based services. Among these technologies, fingerprinting positioning has been widely used, and its performance is satisfactory in precision requirement. The radio-map is the key to fingerprinting positioning. However, once the application scenarios changed, and the radio-map doesn't get updated in time, the performance will be seriously affected. In this work, we develop a novel adaptive radio-map for RSS-based indoor positioning. Firstly, we collected the signal characteristics of a plurality of reference points and checked nodes in the scene to create a static radio map. Then the static frequency was calculated based on the scene map for each reference point path-loss parameters. According to the reference points, path-loss parameters will be clustered and the location area was divided into a plurality of sub-regions. Finally, we checked node robust linear regression of RSSI fingerprints, including the reference points' in each sub-region and the check nodes' in the sub-region. Experimental results show that the algorithm can effectively improve the RF map change over time and the dynamic changes in the positioning accuracy of the indoor environment.
机译:随着基于位置的服务的发展,室内环境中的无线定位正在迅速增长。在这些技术中,指纹定位已被广泛使用,并且其性能在精度要求方面令人满意。无线电地图是指纹定位的关键。但是,一旦应用程序场景发生了变化,并且无线电地图没有及时更新,性能将受到严重影响。在这项工作中,我们为基于RSS的室内定位开发了一种新颖的自适应无线电地图。首先,我们收集了多个参考点的信号特征并检查了场景中的节点,以创建静态无线电图。然后根据场景图为每个参考点路径损耗参数计算静态频率。根据参考点,将对路径损耗参数进行聚类,并将位置区域划分为多个子区域。最后,我们检查了RSSI指纹的节点鲁棒线性回归,包括每个子区域中的参考点和子区域中的检查节点。实验结果表明,该算法可以有效改善射频图随时间的变化以及室内环境定位精度的动态变化。

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