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首页> 外文期刊>IEEE Transactions on Communications >Optimal OFDM design for time-frequency dispersive channels
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Optimal OFDM design for time-frequency dispersive channels

机译:时频色散信道的最优OFDM设计

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Transmission over wireless channels is subject to time dispersion due to multipath propagation and to frequency dispersion due to the Doppler effect. Standard orthogonal frequency-division multiplexing (OFDM) systems, using a guard-time interval or cyclic prefix, combat intersymbol interference (ISI), but provide no protection against interchannel interference (ICI). This drawback has led to the introduction of pulse-shaping OFDM systems. We first present a general framework for pulse shape design. Our analysis shows that certain pulse shapes proposed in the literature are, in fact, optimal in a well-defined sense. Furthermore, our approach provides a simple way to adapt the pulse shape to varying channel conditions. We then show that (pulse-shaping) OFDM systems based on rectangular time-frequency lattices are not optimal for time- and frequency-dispersive wireless channels. This motivates the introduction of lattice-OFDM (LOFDM) systems which are based on general time-frequency lattices. Using results from sphere packing theory, we show how to design LOFDM systems (lattice and pulse shape) optimally for timeand frequency-dispersive channels in order to minimize the joint ISI/ICI. Our theoretical analysis is confirmed by numerical simulations, showing that LOFDM systems outperform traditional pulse-shaping OFDM systems with respect to robustness against ISI/ICI.
机译:无线信道上的传输由于多径传播而受到时间分散,而由于多普勒效应而受到频率分散。使用保护时间间隔或循环前缀的标准正交频分复用(OFDM)系统可抵抗符号间干扰(ISI),但不能提供针对通道间干扰(ICI)的保护。这一缺点导致引入了脉冲整形OFDM系统。我们首先介绍脉冲形状设计的一般框架。我们的分析表明,文献中提出的某些脉冲形状在定义明确的意义上实际上是最佳的。此外,我们的方法提供了一种使脉冲形状适应变化的通道条件的简单方法。然后,我们表明基于矩形时频格子的(脉冲整形)OFDM系统对于时间和频率分散的无线信道不是最佳的。这激励了基于一般时频晶格的晶格OFDM(LOFDM)系统的引入。利用球面堆积理论的结果,我们展示了如何针对时间和频率分散信道优化设计LOFDM系统(晶格和脉冲形状),以使ISI / ICI联合最小化。数值模拟证实了我们的理论分析,结果表明,就ISI / ICI的鲁棒性而言,LOFDM系统优于传统的脉冲整形OFDM系统。

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