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PAPR reduction and digital predistortion for non-contiguous waveforms with well-localized spectrum

机译:具有良好定位的非连续波形的PAPR降低和数字预失真

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One important direction in advanced communication waveform studies for future wireless communications is improved spectrum localization, i.e., minimization of the power leakage outside very narrow guardbands around the useful signal band. This helps to improve the spectrum efficiency and facilitates asynchronous frequency-division multiple access with small overhead. These are central targets, e.g., in the 5G mobile system development. Various multicarrier and single-carrier waveforms with effective spectrum localization are available, including filter bank based waveforms and filtered OFDM, but their spectral characteristics have so far been investigated mostly in the digital processing domain. For practical implementation, it is necessary to study the effects of transmitter power amplifier (PA) nonlinearities on the spectrum localization of these waveforms. In this context, power amplifier linearization and peak-to-average power ratio (PAPR) reduction methods have a crucial role in the design of energy efficient and cost-effective transmitters. This paper focuses on these issues, by combining a generic low-complexity PAPR reduction method based on peak windowing with linearized PA based on digital predistortion (DPD). It is demonstrated that the combined DPD and PAPR reduction allows the transmitter to significantly improve the spectrum localization without sacrificing the inband waveform quality, while operating very close to the PA saturation level, thus achieving high power efficiency as well. The results are generally applicable to all spectrally localized waveforms.
机译:对于未来的无线通信,高级通信波形研究的一个重要方向是改善频谱定位,即,使有用信号带周围非常窄的保护带外的功率泄漏最小化。这有助于提高频谱效率,并以较小的开销促进异步频分多址。这些是例如5G移动系统开发中的主要目标。可以使用各种具有有效频谱定位的多载波和单载波波形,包括基于滤波器组的波形和经过滤波的OFDM,但到目前为止,它们的频谱特性主要是在数字处理领域中进行的。对于实际实现,有必要研究发射器功率放大器(PA)非线性对这些波形的频谱定位的影响。在这种情况下,功率放大器的线性化和峰均功率比(PAPR)的降低方法在设计节能高效的发射器时起着至关重要的作用。本文通过将基于峰值窗口的通用低复杂度PAPR降低方法与基于数字预失真(DPD)的线性化PA相结合,着重解决这些问题。证明了DPD和PAPR的组合降低使发射机能够显着改善频谱定位,而不会牺牲带内波形质量,同时在非常接近PA饱和水平的情况下工作,从而也实现了高功率效率。该结果通常适用于所有频谱局部化的波形。

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