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Iterative Detection using MMSE-PIC Demapping for MIMO-GFDM Systems

机译:使用MMSE-PIC解映射的MIMO-GFDM系统迭代检测

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Diverse requirements are foreseen for the 5G cellular system and new waveforms are being researched for the physical layer (PHY), where the non-orthogonal Generalized Frequency Division Multiplexing (GFDM) is one candidate. Its inherent self-interference makes receiver design challenging, particularly when besides inter-carrier interference (ICI) and inter-symbol interference (ISI) also inter-antenna interference (IAI) occurs, as in systems that employ spatial multiplexing (SM) to increase the throughput. To encounter this interference, we apply the prominent minimum mean squared error with parallel interference cancellation (MMSE-PIC) iterative receiver structure to GFDM, and provide a formulation that is suitable for a low-complexity implementation. We analyze the decoding performance employing a well-known current WiMax LDPC code. The proposed demapping algorithm can be implemented with complexity that scales linearly with the number of subcarriers of the system. Analysis of information transfer characteristics shows that the MMSE-PIC demapper for GFDM exhibits potential to outperform the OFDM demapper with a matching code, however, simulations of frame error rate (FER) show inferior performance of GFDM. These results emphasize the importance of a joint waveform and code design in order to exploit the full potential of the MMSE-PIC receiver structure for GFDM.
机译:预计5G蜂窝系统将有各种各样的需求,并且正在研究物理层(PHY)的新波形,其中非正交广义频分复用(GFDM)就是其中的一种。其固有的自干扰使接收机设计具有挑战性,特别是当除了载波间干扰(ICI)和符号间干扰(ISI)之外,还出现天线间干扰(IAI)时,例如在采用空间复用(SM)来增加噪声的系统中吞吐量。为了遇到这种干扰,我们将具有并行干扰消除(MMSE-PIC)迭代接收器结构的显着最小均方误差应用于GFDM,并提供适用于低复杂度实现的公式。我们使用众所周知的当前WiMax LDPC码来分析解码性能。所提出的解映射算法可以用复杂度来实现,该复杂度随系统子载波的数量线性增加。信息传输特性分析表明,用于GFDM的MMSE-PIC解映射器具有优于具有匹配代码的OFDM解映射器的潜力,但是,帧错误率(FER)的仿真显示GFDM的性能较差。这些结果强调了联合波形和代码设计的重要性,以便充分利用MMSE-PIC接收器结构对GFDM的全部潜力。

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