论文标题

基于共识平均和卡尔曼过滤的分布式天线阵列中的频率和相位同步

Frequency and Phase Synchronization in Distributed Antenna Arrays Based on Consensus Averaging and Kalman Filtering

论文作者

Rashid, Mohammed, Nanzer, Jeffrey A.

论文摘要

提出了分布式天线阵列中关节频率和相位同步的分散方法。数组中的节点与相邻节点共享其频率和相位,以使这些参数在整个数组中对齐。我们的信号模型包括局部振荡器的频率漂移和相位抖动,以及节点处的频率和相位估计误差,并使用实用统计数据对其进行建模。提出了一种分散的频率和相位共识(DFPC)算法,该算法使用平均共识方法,其中阵列中的每个节点通过计算其相邻节点的频率和相位的平均值来更新其频率和相位。仿真结果表明,在收敛时,DFPC算法可以使所有节点的频率和相位与振荡器控制的残留相误差和估计误差。为了减少此残差相误差,从而改善节点之间的同步,提出了基于卡尔曼滤波器的分散频率和相位共识(KF-DFPC)算法。理论上得出了KF-DFPC和DFPC算法的收敛性的总残留相误差。通过改变信号的持续时间,节点的连通性,阵列中的节点数量以及传输信号的信号比率,将这些算法的同步性能相互比较。仿真结果表明,所提出的KF-DFPC算法比在内的其他算法(包括DFPC)收敛的迭代更少。此外,对于局部信息广播之间的较短间隔,KF-DFPC算法在减少剩余总相误差方面显着优于DFPC算法,而与接收信号的信号差异无关。

A decentralized approach for joint frequency and phase synchronization in distributed antenna arrays is presented. The nodes in the array share their frequencies and phases with their neighboring nodes to align these parameters across the array. Our signal model includes the frequency drifts and phase jitters of the local oscillators as well as the frequency and phase estimation errors at the nodes and models them using practical statistics. A decentralized frequency and phase consensus (DFPC) algorithm is proposed which uses an average consensus method in which each node in the array iteratively updates its frequency and phase by computing an average of the frequencies and phases of their neighboring nodes. Simulation results show that upon convergence the DFPC algorithm can align the frequencies and phases of all the nodes up to a residual phase error that is governed by the oscillators and the estimation errors. To reduce this residual phase error and thus improve the synchronization between the nodes, a Kalman filter based decentralized frequency and phase consensus (KF-DFPC) algorithm is presented. The total residual phase error at the convergence of the KF-DFPC and DFPC algorithms is derived theoretically. The synchronization performances of these algorithms are compared to each other in light of this theoretical residual phase error by varying the duration of the signals, connectivity of the nodes, the number of nodes in the array, and signal to noise ratio of the transmitted signals. Simulation results demonstrate that the proposed KF-DFPC algorithm converges in fewer iterations than other algorithms including DFPC. Furthermore, for shorter intervals between local information broadcasts, the KF-DFPC algorithm significantly outperforms the DFPC algorithm in reducing the residual total phase error, irrespective of the signal to noise ratio of the received signals.

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