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A Bayesian Probabilistic TOA/AOA Hybrid Localization Algorithm in Multipath Environments

机译:多路径环境下的贝叶斯概率TOA / AOA混合定位算法

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Cellular network-based positioning is a widely studied technology. It can be used to solve positioning problems when satellite signals cannot be received. TOA / AOA hybrid positioning is a reliable method in wireless positioning. However, due to multipath and NLOS propagation problems, the performance of the hybrid positioning algorithm is severely affected. Aiming at the above issues, we propose a TOA / AOA hybrid positioning algorithm based on the maximum posterior probability. By modeling the measurement error as a mixture Gaussian model, the algorithm accurately estimates the channel bias while calculating the user's position. Further, using the estimated channel information, the algorithm recalculates the user position to improve positioning accuracy. Compared with other positioning algorithms based on the Bayesian principle, the hybrid positioning method uses full of signal characteristics to estimate the transmitter position, so it can effectively reduce the impact of measurement errors. Simulation results show that the algorithm proposed in this paper effectively improves positioning accuracy.
机译:基于蜂窝网络的定位是一项广泛研究的技术。当无法接收卫星信号时,它可以用于解决定位问题。 TOA / AOA混合定位是无线定位的可靠方法。但是,由于多径和NLOS传播问题,混合定位算法的性能受到严重影响。针对上述问题,我们提出了一种基于最大后验概率的TOA / AOA混合定位算法。通过将测量误差建模为混合高斯模型,该算法可在计算用户位置的同时准确估算通道偏差。此外,使用估计的信道信息,该算法重新计算用户位置以提高定位精度。与其他基于贝叶斯原理的定位算法相比,混合定位方法充分利用信号特征来估计发射机位置,从而可以有效减少测量误差的影响。仿真结果表明,本文提出的算法有效地提高了定位精度。

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