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首页> 外文期刊>IEEE Transactions on Vehicular Technology >Antenna Reliability Ordering Technique for Unequal Error Protection in Jointly Detected MIMO Systems
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Antenna Reliability Ordering Technique for Unequal Error Protection in Jointly Detected MIMO Systems

机译:联合检测MIMO系统中不平等差错保护的天线可靠性排序技术

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In this paper, we address the ordering of transmit antennas according to reliability for unequal error protection (UEP) in spatially multiplexed (SM) multiple-input multiple-output (MIMO) systems with joint detection at the receiver. When zeroforcing (ZF) detection is adopted, the reliabilities of transmit antennas are explicitly expressed as postequalization signal-to-noise ratios (SNRs). Thus, multiantenna UEP can be implemented by assigning data of high priority to transmit antennas with a high postequalization SNR. Unfortunately, the overall error performance is generally unsatisfactory. Various joint signal detection techniques that achieve maximum likelihood (ML) or near-ML performance have been developed as alternatives to ZF, but it is not obvious how to discriminate the reliabilities of the transmit antennas or the jointly detected symbols. Recently, an ordering technique for antenna reliabilities was proposed that exploits the structure of the previous near-optimal QR-decomposition-based least-reliable-layer joint detection. In this paper, we divide the log-likelihood ratio of each symbol into collaborative and individual components, assuming joint ML detection. We derive a statistical connection between the magnitude order of each component of the multiple symbols (or the corresponding transmit antennas) and the post-ZF-equalization SNRs. Based on the statistical connections, we propose the use of post-ZF-equalization SNR as a criterion for antenna reliability ordering of SM MIMO with various near-optimal, as wellas optimal, joint detections. The differentiated error performance of transmit antennas is also shown to be mainly attributed to the difference of individual components, and the tendency becomes stronger as the constellation size increases. Simulations demonstrate that the proposed ordering technique better meets the UEP requirement with lower computational complexity than the conventional ordering. Assuming Nt x Nt MIMO systems, the previous ordering and the proposed ordering require O(Nt3) + ΣN=2Nt-1 O(NNt2 + N3) and O(Nt3), respectively.
机译:在本文中,我们针对接收器联合检测的空间多路复用(SM)多输入多输出(MIMO)系统中的不平等差错保护(UEP)的可靠性,解决了根据发射天线的排序问题。当采用零强制(ZF)检测时,发射天线的可靠性明确表示为后均衡化信噪比(SNR)。因此,可以通过将高优先级的数据分配给具有高后均衡SNR的发射天线来实现多天线UEP。不幸的是,总体错误性能通常不能令人满意。作为ZF的替代方案,已经开发了各种实现最大似然(ML)或接近ML性能的联合信号检测技术,但是如何区分发射天线或联合检测符号的可靠性还不是很明显。最近,提出了一种用于天线可靠性的排序技术,该技术利用了先前基于近最优QR分解的最小可靠层联合检测的结构。在本文中,假设联合机器学习检测,我们将每个符号的对数似然比分为协作部分和个体部分。我们得出多个符号(或相应的发射天线)的每个分量的大小顺序与ZF后均衡SNR之间的统计联系。基于统计联系,我们建议使用ZF均衡后的SNR作为SM MIMO天线可靠性排序的标准,该MIMO MIMO具有各种接近最优以及最优的联合检测功能。还显示了发射天线的差异化误差性能主要归因于各个组件的差异,并且随着星座图尺寸的增加,这种趋势变得更强。仿真表明,与常规排序相比,所提出的排序技术以较低的计算复杂度更好地满足了UEP要求。假设Nt x Nt MIMO系统,先前的排序和建议的排序分别需要O(Nt3)+ΣN= 2Nt-1 O(NNt2 + N3)和O(Nt3)。

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