基于虚拟天线阵列MIMO信道探测测量的AoA、AoD和TdoA的高分辨率估计:最大似然与酉张量ESPRIT

S. Haefner, R. Thoma
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引用次数: 2

摘要

本文将考虑从MIMO信道测深测量中估计几何传播模型的参数,这需要求解一个逆问题。因此,导出了测量数据的模型,该模型包含了测量系统的模型以及感兴趣的参数。在数据模型的基础上,导出最大似然估计量来推断模型参数。由于考虑了由发射端和接收端逐步旋转的定向天线组成的虚拟天线阵列,MIMO测量在波束空间中进行。因此,数据模型可以用测量系统和传播通道的多维卷积来描述。在卷积建模的基础上,将参数估计问题转化为谐波恢复问题,用统一张量- esprit算法求解。根据最大似然估计器和ESPRIT估计器的均方根估计误差,通过蒙特卡罗模拟进行了比较。
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High Resolution Estimation of AoA, AoD and TdoA from MIMO Channel Sounding Measurements with Virtual Antenna Arrays: Maximum-Likelihood vs. Unitary Tensor-ESPRIT
Estimating the parameters of a geometric propagation model from MIMO channel sounding measurements will be considered, which requires the solution of an inverse problem. Thus, a model of the measured data is derived, which incorporates a model of the measurement system as well as the parameters of interest. Based on the data model a maximum-likelihood estimator will be derived to infer the model parameters. Because virtual antenna arrays are considerer, formed by step-wise rotating directive antennas at transmitter and receiver side, the MIMO measurements are conducted in the beam-space. Hence, the data model can be described by a multidimensional convolution of the measurement system and the propagation channel. Based on the convolutional modelling, the parameter estimation problem is transformed into a harmonic retrieval problem, which can be solved by an Unitary Tensor-ESPRIT algorithm. The maximum-likelihood and ESPRIT estimator are compared by Monte-Carlo simulations according to their root-mean-square estimation error.
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