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An Algorithm and Data Process Scheme for Indoor Location Based on Mobile Devices

机译:基于移动设备的室内定位算法和数据处理方案

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摘要

Limited by the sampling capacity of the mobile devices, many real-time indoor location systems have such problems as low accuracy, large variance, and non-smooth movement of the estimated position. A new positioning algorithm and a new processing method for sampled data are proposed. Firstly, a positioning algorithm is designed based on the cluster-based nearest neighbour or probability. Secondly, a weighted average method with sliding window is used to process the sampled data as to overcome the mobile devices’ weak capability of signal sampling. Experimental results show that, for the general mobile devices, the accuracy of indoor position estimation increases from 56.5% to 76.6% for a 2-meter precision, and from 77.4% to 90.9% for a 3-meter precision. Therefore, the proposed methods can significantly and stably improve the positioning accuracy.
机译:受移动设备采样能力的限制,许多实时室内定位系统存在诸如精度低,方差大和估计位置移动不平稳等问题。提出了一种新的采样数据定位算法和处理方法。首先,基于基于聚类的最近邻居或概率设计一种定位算法。其次,采用带有滑动窗口的加权平均法来处理采样数据,以克服移动设备的信号采样能力不足。实验结果表明,对于普通的移动设备,室内位置估计的精度在2米的精度下从56.5%提高到76.6%,在3米的精度上从77.4%提高到90.9%。因此,所提出的方法可以显着且稳定地提高定位精度。

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