Improving Indoor Positioning Accuracy Using RIS-based RSS Optimization

Somayeh Bazin, K. Navaie
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Abstract

In the Received Signal Strength (RSS) based Indoor Positioning Systems (IPS), the position of a receiver is estimated by comparing its RSS values with a fingerprint. The fingerprint is a dataset including the measured RSS values at pre-planned Reference Points (RP) for a set of reference transmitters. For a given RPs' spatial distribution, the RSS values are however affected by the intrinsic temporal and spatial uncertainties in the indoor wireless channel, hence constraining the positioning accuracy. To address this issue, we propose an algorithm to predesign the RSS values at each RP using Reconfigurable Intelligent Surface (RIS) technology. In the proposed method, the RIS reflection coefficients are obtained to maximize the difference between the RSS values between the RPs. The simulation results confirm that even with a relatively small number of RIS elements, the proposed method significantly improves the IPS efficiency.
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基于ris的RSS优化提高室内定位精度
在基于接收信号强度(RSS)的室内定位系统(IPS)中,通过将接收器的RSS值与指纹进行比较来估计接收器的位置。指纹是一个数据集,包括一组参考发射机在预先规划的参考点(RP)上测量的RSS值。对于给定的空间分布,室内无线信道中固有的时间和空间不确定性会影响RSS值,从而限制了定位精度。为了解决这个问题,我们提出了一种使用可重构智能表面(RIS)技术预先设计每个RP的RSS值的算法。该方法通过获取RIS反射系数,使各rp之间的RSS值之差最大化。仿真结果表明,即使在RIS元素较少的情况下,该方法也能显著提高IPS效率。
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