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Multi-Node ML Time and Frequency Synchronization for Distributed MIMO-Relay Beamforming Over Time-Varying Flat-Fading Channels

机译:时变平坦衰落信道上的分布式MIMO中继波束成形的多节点ML时间和频率同步

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摘要

In this paper, we investigate maximum likelihood (ML) time delay (TD) and carrier frequency offset (CFO) synchronization in multi-node decode-and-forward cooperative relaying systems operating over time-varying channels. This new synchronization scheme is embedded into a distributed multiple input multiple output (MIMO)-relay beamforming transceiver structure to avoid the drawbacks of multidimensional ML estimation at the destination and to minimize the overhead cost. By accounting for a perfect Doppler spread value, the new synchronization solution delivers accurate TD and CFO estimates. For real-world operation, however, this new technique can be jointly implemented with any Doppler spread estimator in a new iterative scheme using a time-constant channel (TCC)-based synchronization method at the initialization step. The resulting TD and CFO estimates along with the channel estimates are then fed into a distributed MIMO-relay beamforming transceiver of K single-antenna nodes, for pre-compensation at each node of the transmitted signals, to ensure constructive maximum ratio combining (MRC) at the destination. Simulation results show significant synchronization accuracy improvement over previous distributed multi-node synchronization techniques assuming TCCs. The latter translates into noticeable gains in terms of useful link-level throughput, more so at higher Doppler or with more relaying nodes.
机译:在本文中,我们研究了在时变信道上运行的多节点解码转发协作中继系统中的最大似然(ML)时间延迟(TD)和载波频率偏移(CFO)同步。这种新的同步方案被嵌入到分布式多输入多输出(MIMO)中继波束成形收发器结构中,以避免在目的地进行多维ML估计的弊端并使开销成本最小化。通过考虑完美的多普勒扩展值,新的同步解决方案可提供准确的TD和CFO估算值。但是,对于现实世界的操作,可以在初始化步骤中使用基于时间常数信道(TCC)的同步方法,在任何新的迭代方案中与任何多普勒扩展估计器共同实施此新技术。然后将所得的TD和CFO估计值与信道估计值一起馈入K个单天线节点的分布式MIMO中继波束成形收发器中,以在发射信号的每个节点处进行预补偿,以确保建设性的最大比率合并(MRC)在目的地。仿真结果表明,与以前采用TCC的分布式多节点同步技术相比,同步精度有了显着提高。后者在有用的链路级吞吐量方面转化为明显的收益,在更高的多普勒频率或更多的中继节点下更是如此。

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