Variational Bayesian Data Detection for Multiuser MIMO Systems Corrupted by Phase Noises

📅 2026-09-08
📈 Citations: 0
Influential: 0
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🤖 AI Summary
该研究针对多用户MIMO系统中由相位噪声引起的问题,提出了一种基于变分贝叶斯框架的方法进行联合相位噪声估计和数据检测,有效提升了通信系统的性能。
📝 Abstract
Phase noise (PN), arising from imperfect local oscillators, introduces multiplicative distortions that degrade the performance of communication systems. In uplink multiuser multiple-input multiple-output (MIMO) systems, this impairment is further compounded by the presence of independent oscillators at each transmit and receive antenna, each contributing an uncorrelated noise component. Existing PN compensation algorithms at the receiver either rely on linearization approximations that lose accuracy under severe PN conditions, or incur computational complexity that scales prohibitively with the number of antennas. To address these limitations, we propose a variational Bayes (VB) framework for joint PN estimation and data detection in uplink MIMO systems. We develop VB-based detectors that treat noise statistics as latent variables, and reformulate the inference problem by absorbing the transmitter PN into the transmitted signal, treating the resulting composite variable as the inference target. Under von Mises priors, this reformulation yields exact closed-form conjugate posterior updates, from which we derive an improved detector achieving superior performance at low complexity. Simulation results demonstrate that the proposed VB algorithm achieves lower symbol error rates than the Self-Interference Whitening (SIW) algorithm and conventional phase-noise-unaware detectors across a wide range of channel conditions, modulation orders, and PN severities, while remaining computationally scalable to large MIMO deployments.
Problem

Research questions and friction points this paper is trying to address.

Phase Noise
Multiuser MIMO Systems
Multiplicative Distortions
Oscillators
Innovation

Methods, ideas, or system contributions that make the work stand out.

variational Bayes
phase noise estimation
data detection
MIMO systems
closed-form solution
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