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How Much FBMC/OQAM Is Better than FBMC/QAM? A Tentative Response Using the POPS Paradigm

机译:FBMC / OQAM比FBMC / QAM好多少?使用POPS范式的初步响应

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A major trend of the current research in 5G is to find well time and frequency localized waveforms, dedicated to non-orthogonal wireless multi-carrier systems. The ping-pong optimized pulse shaping (POPS) paradigm was proposed as a powerful technique to generate a family of waveforms, ensuring an optimal signal to interference plus noise ratio (SINR) at the receiver. In this paper, we derive, for the first time, the analytical expression of the SINR for FBMC/OQAM systems. We then adopt the POPS algorithm in the design of optimum transmit and receive waveforms for FBMC/OQAM, with respect to the SINR criterion. For relatively high dispersions, numerical results show that the optimized waveforms provide a gain of 7?dB, in terms of SINR, compared to the PHYDYAS waveform. They also show that the obtained waveforms offer better out-of-band (OOB) emissions with regard to those of the IOTA waveform. Furthermore, we notice that FBMC/OQAM systems present a gain of ?dB in SINR, compared to FBMC/QAM systems, when both operate at their time-frequency lattice critical densities. However, FBMC/QAM systems can guarantee, with a reduced computational complexity, a comparable performance to FBMC/OQAM systems, in terms of SINR, when their spectral efficiency is relatively reduced by less than 5%.
机译:当前5G研究的一个主要趋势是找到专用于非正交无线多载波系统的时间和频率局部波形。乒乓优化脉冲整形(POPS)范例被提出为一种强大的技术,可生成一系列波形,从而确保接收器处的最佳信号干扰加噪声比(SINR)。在本文中,我们首次推导了FBMC / OQAM系统SINR的解析表达式。然后,针对SINR准则,我们在设计FBMC / OQAM的最佳发送和接收波形时采用了POPS算法。对于较高的色散,数值结果表明,与PHYDYAS波形相比,以SINR计,优化的波形可提供7?dB的增益。他们还表明,相对于IOTA波形,所获得的波形具有更好的带外(OOB)发射。此外,我们注意到,当FBMC / OQAM系统均以其时频晶格临界密度工作时,与FBMC / QAM系统相比,它们的SINR增益为?dB。但是,当频谱效率相对降低不到5%时,就SINR而言,FBMC / QAM系统可以保证降低的计算复杂度,达到与FBMC / OQAM系统相当的性能。

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