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Multi-Feedback Successive Interference Cancellation with Multi-Branch Processing for MIMO Systems

机译:MIMO系统中多分支处理的多反馈连续干扰消除

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In this paper, a new successive interference cancellation (SIC) strategy for multiple-input multiple output (MIMO) spatial multiplexing systems is developed to combat the error propagation (EP) in decision feedback systems. The proposed scheme employs a parallel multi-branch (MB) structure. Each branch employs a SIC with multi-feedback (MF) strategy to detects the signals according to their respective ordering pattern. The MF-SIC scheme considers the feedback diversity by using a number of selected constellation points as the feedback set if a previous decision is considered unreliable. The shadow area constraint (SAC) is proposed to reduce the computational complexity by avoiding redundant MF processing with reliable decisions. The MB-MF-SIC achieves a higher detection diversity by selecting the branch which yields the signal estimates with the best performance according to the maximum likelihood rule. The simulation results show that the MB-MF-SIC scheme successfully mitigates the EP and approaches the ML performance while requiring lower complexity than sphere decoders.
机译:本文针对多输入多输出(MIMO)空间复用系统开发了一种新的连续干扰消除(SIC)策略,以应对决策反馈系统中的错误传播(EP)。所提出的方案采用了并行多分支(MB)结构。每个分支均采用具有多反馈(MF)策略的SIC,以根据其各自的排序模式来检测信号。如果认为先前的决定不可靠,则MF-SIC方案会通过使用多个选定的星座点作为反馈集来考虑反馈分集。提出了阴影区域约束(SAC),以通过避免具有可靠决策的冗余MF处理来降低计算复杂性。 MB-MF-SIC通过选择根据最大似然规则产生具有最佳性能的信号估计的分支来实现更高的检测分集。仿真结果表明,MB-MF-SIC方案成功减轻了EP并达到了ML性能,同时所需的复杂度比球形解码器低。

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