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Statistical Trilateration With Skew-t Distributed Errors in LTE Networks

机译:LTE网络中带有偏斜t分布错误的统计三边测量

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Localization accuracy of trilateration methods in long term evolution (LTE) cellular networks, which are based on time-of-arrival, may be highly degraded due to multipath and non-line of sight conditions in urban and indoor environments. Multipath mitigation techniques usually involve a high computational burden and require wideband signals to be effective, which limit their adoption in certain low-cost and low-power mobile applications using narrow-band signals. As an alternative to these conventional techniques, this paper analyzes an expectation maximization (EM) localization algorithm that considers the skewness introduced by multipath in the LTE ranging error distribution. The EM algorithm is extensively studied with realistic emulated LTE signals of 1.4-MHz bandwidth. The EM method is compared with a standard nonlinear least squares (NLS) algorithm under ideal simulated conditions and using realistic outdoor measurements from a laboratory testbed. The EM method outperforms the NLS method when the ranging errors in the training and test stages have similar distributions.
机译:基于到达时间的长期演进(LTE)蜂窝网络中的三边测量方法的定位精度可能会由于城市和室内环境中的多路径和视线不佳而大大降低。多径缓解技术通常涉及较高的计算负担,并且需要宽带信号有效,这限制了它们在某些使用窄带信号的低成本和低功耗移动应用中的采用。作为这些常规技术的替代方法,本文分析了一种预期最大化(EM)定位算法,该算法考虑了LTE测距误差分布中多径引入的偏度。 EM算法已针对1.4 MHz带宽的实际仿真LTE信号进行了广泛研究。在理想的模拟条件下,使用实验室测试台的实际室外测量结果,将EM方法与标准的非线性最小二乘(NLS)算法进行了比较。当训练阶段和测试阶段的测距误差具有相似的分布时,EM方法优于NLS方法。

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