Online Expectation-Maximization Based Frequency and Phase Consensus in Distributed Phased Arrays
Mohammed Rashid, Jeffrey A. Nanzer

TL;DR
This paper introduces a novel push-sum based frequency and phase consensus algorithm for directed distributed phased arrays, incorporating Kalman filtering and an online EM method to improve synchronization accuracy.
Contribution
It develops a new PsFPC algorithm suitable for directed networks, integrates Kalman filtering, and proposes an online EM approach for unknown model parameters, enhancing phase coherence.
Findings
KF-PsFPC significantly reduces residual phase error.
The online EM algorithm effectively estimates unknown noise covariances.
Simulation results show improved performance over existing methods.
Abstract
Distributed phased arrays are comprised of separate, smaller antenna systems that coordinate with each other to support coherent beamforming towards a destination. However, due to the frequency drift and phase jitter of the oscillators, as well as the frequency and phase estimation errors induced at the nodes, there exists decoherence that degrades the beamforming process. A decentralized frequency and phase consensus (DFPC) algorithm was proposed in prior work for undirected networks in which the nodes locally share their frequencies and phases with their neighbors to reach synchronization. Kalman filtering (KF) was also integrated with DFPC (KF-DFPC) to lower the total residual phase error upon convergence. Since these DFPC-based algorithms rely on the average consensus protocol, they do not converge for directed networks. In this paper, we propose a push-sum based frequency and phase…
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Taxonomy
TopicsAntenna Design and Optimization · Cooperative Communication and Network Coding · Advanced MIMO Systems Optimization
