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用于光子辅助毫米波系统中16-QAM传输的优化多天线最大比合并

Optimized Multi-Antenna MRC for 16-QAM Transmission in a Photonics-Aided Millimeter-Wave System.

作者信息

Uddin Rahim, Li Weiping, Yu Jianjun

机构信息

Key Laboratory for Information Science of Electromagnetic Waves (MoE), School of Information Science and Technology, Fudan University, Shanghai 200433, China.

出版信息

Sensors (Basel). 2025 Aug 13;25(16):5010. doi: 10.3390/s25165010.

Abstract

This work presents an 80 Gbps photonics-aided millimeter-wave (mm Wave) wireless communication system employing 16-Quadrature Amplitude Modulation (16-QAM) and a 1 × 2 single-input multiple-output (SIMO) architecture with maximum ratio combining (MRC) to achieve robust 87.5 GHz transmission over 4.6 km. By utilizing polarization-diverse optical heterodyne generation and spatial diversity reception, the system enhances spectral efficiency while addressing the low signal-to-noise ratio (SNR) and channel distortions inherent in long-haul links. A blind equalization scheme combining the constant modulus algorithm (CMA) and decision-directed least mean squares (DD-LMS) filtering enables rapid convergence and suppresses residual inter-symbol interference, effectively mitigating polarization drift and phase noise. The experimental results demonstrate an SNR gain of approximately 3 dB and a significant bit error rate (BER) reduction with MRC compared to single-antenna reception, along with improved SNR performance in multi-antenna configurations. The synergy of photonic mm Wave generation, adaptive spatial diversity, and pilot-free digital signal processing (DSP) establishes a robust framework for high-capacity wireless fronthaul, overcoming atmospheric attenuation and dynamic impairments. This approach highlights the viability of 16-QAM in next-generation ultra-high-speed networks (6G/7G), balancing high data rates with resilient performance under channel degradation.

摘要

这项工作展示了一种80 Gbps的光子辅助毫米波(mmWave)无线通信系统,该系统采用16正交幅度调制(16-QAM)和具有最大比合并(MRC)的1×2单输入多输出(SIMO)架构,以实现4.6公里上稳健的87.5 GHz传输。通过利用偏振分集光外差产生和空间分集接收,该系统提高了频谱效率,同时解决了长距离链路中固有的低信噪比(SNR)和信道失真问题。一种结合常数模算法(CMA)和判决导向最小均方(DD-LMS)滤波的盲均衡方案能够实现快速收敛,并抑制残余符号间干扰,有效减轻偏振漂移和相位噪声。实验结果表明,与单天线接收相比,采用MRC时SNR增益约为3 dB,误码率(BER)显著降低,并且在多天线配置中SNR性能也有所改善。光子毫米波产生、自适应空间分集和无导频数字信号处理(DSP)的协同作用为高容量无线前传建立了一个稳健的框架,克服了大气衰减和动态损伤。这种方法突出了16-QAM在下一代超高速网络(6G/7G)中的可行性,在信道退化情况下平衡了高数据速率和弹性性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/865d/12390223/ffde8ffe27bf/sensors-25-05010-g001.jpg

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