大延迟多径和高频偏移效应下毫米波sdr高阶QAM收发系统的设计与验证

Keng-Hwa Liu, Kai-Yun Hong, Juinn-Horng Deng
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引用次数: 0

摘要

未来的通信技术提供了广覆盖、低延迟和高速度的优点。特别是近地轨道卫星传输将在5G和6G系统中发挥重要作用。然而,随着高速移动和高频传输,多普勒效应会严重影响接收机的解调性能。本文解决了在使用高阶QAM调制信号进行远距离通信时,如用于LEO卫星通信的256 QAM时,大延迟多径干扰和高频偏移效应等因素的推导问题。为了克服高多普勒效应,我们采用了预处理高阶功率运算和互相关方案的锁相环(PLL)。其次,采用自适应决策反馈均衡器消除多径因素。此外,采用混合LDPC信道解码器来提高包错误率性能。最后,完成了高阶QAM收发算法的仿真与验证。此外,毫米波相控阵软件定义无线电(SDR)平台的实际测量证实了所提出的收发算法在高多普勒和大延迟传播环境中是有用的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design and Verification of High-Order QAM Transceiver Systems for mmWave SDRs under Large Delay Multipath and High Frequency Offset Effects
Future communication technologies offer the benefits of wide coverage, low latency, and high speeds. In particular, low-Earth orbit (LEO) satellite transmission will play an important role in 5G and 6G systems. However, with high-speed mobile and high-frequency transmission, the Doppler effect can seriously affect the demodulation performance of the receiver. This paper addresses the problem of deriving factors such as large-delay multi-path interference and high-frequency offset effects when using high-order QAM modulation signals for long-distance communication, e.g., 256 QAM for LEO satellite communication. To overcome the high Doppler effect, we adopt a phase locked loop (PLL) with preprocessing high-order power operation and cross-correlation scheme. Next, an adaptive decision feedback equalizer is employed to eliminate the multipath factor. Furthermore, a hybrid LDPC channel decoder is utilized to improve packet error rate performance. Finally, we complete simulation and verification of the high-order QAM transceiver algorithms. Moreover, the actual measurements of the mmWave phase array software defined radio (SDR) platform confirm the proposed transceiver algorithms being useful in the high Doppler and large delay spread environments.
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