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Transmit Covariance and Waveform Optimization for Non-Orthogonal CP-FBMA System

机译:发送非正交CP-FBMA系统的协方差和波形优化

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摘要

Filter bank multiple access (FBMA) without subbands orthogonality has been proposed as a new candidate waveform to better meet the requirements of future wireless communication systems and scenarios. It has the ability to process directly the complex symbols without any fancy preprocessing. Along with the usage of cyclic prefix (CP) and wide-banded subband design, CP-FBMA can further improve the peak-to-average power ratio and bit error rate performance while reducing the length of filters. However, the potential gain of removing the orthogonality constraint on the subband filters in the system has not been fully exploited from the perspective of waveform design, which inspires us to optimize the subband filters for CP-FBMA system to maximizing the achievable rate. Besides, we propose a joint optimization algorithm to optimize both the waveform and the covariance matrices iteratively. Furthermore, the joint optimization algorithm can meet the requirements of filter design in practical applications in which the available spectrum consists of several isolated bandwidth parts. Both general framework and detailed derivation of the algorithms are presented. Simulation results show that the algorithms converge after only a few iterations and can improve the sum rate dramatically while reducing the transmission delay of information symbols.
机译:已经提出了没有子带正交性的多址(FBMA)作为新的候选波形,以更好地满足未来的无线通信系统和场景的要求。它有能力直接处理复杂的符号,而无需任何花哨的预处理。随着循环前缀(CP)和宽带子带设计的使用,CP-FBMA可以进一步提高峰值到平均功率比和误码率性能,同时减小滤波器的长度。然而,从波形设计的角度透视系统中除去对系统中子带滤波器的正交限制的潜在增益尚未充分利用,这激发了我们为CP-FBMA系统进行优化的子带滤波器,以最大化可实现的速率。此外,我们提出了一种联合优化算法,可以迭代地优化波形和协方差矩阵。此外,在实际应用中,联合优化算法可以满足过滤器设计的要求,其中可用频谱由几个隔离带宽部件组成。介绍了算法的一般框架和详细推导。仿真结果表明,该算法仅在几个迭代之后收敛,并且可以在降低信息符号的传输延迟的同时显着提高总和速率。

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