Time-Packing as Enabler of Optical Feeder Link Adaptation in High Throughput Satellite Systems

J. Bas, A. Dowhuszko
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引用次数: 3

Abstract

This paper studies the data rate that a High Throughput Satellite (HTS) system with fully-regenerative payload can achieve when using an intensity modulation/direct detection optical feeder link. A low-order M-ary Pulse Amplitude Modulation (M-PAM) with time-packing is used to modulate the intensity of the laser diode beam, making use of an external Mach-Zehnder modulator. These M-PAM symbols are recovered on-board the satellite with the aid of a photodetector, and are then encapsulated into the 5G radio frame of the access link. The M-PAM modulation order and the overlapping factor of timepacking are jointly selected to tackle the impact of slowly-varying weather conditions. Moreover, the inter-symbol interference that time-packing introduces is mitigated in reception using a Viterbi equalizer. As expected, time-packing enables a finer granularity on the link adaptation capability of the optical feeder link, enabling to adjust its spectral efficiency according to the moderate attenuation that thin cloud layers introduce.
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高通量卫星系统中光馈线链路自适应的时间填充技术
本文研究了具有完全再生载荷的高通量卫星(HTS)系统在使用强度调制/直接探测光馈线链路时所能达到的数据速率。利用外部马赫-曾德尔调制器,采用带时间填充的低阶M-ary脉冲调幅(M-PAM)调制激光二极管光束的强度。在光电探测器的帮助下,这些M-PAM符号在卫星上被恢复,然后被封装到接入链路的5G无线电框架中。同时选择了M-PAM调制阶数和时间填充的重叠因子,以应对缓慢变化的天气条件的影响。此外,使用Viterbi均衡器在接收中减轻了时间填充引入的符号间干扰。正如预期的那样,时间填充使光馈线链路的链路适应能力具有更细的粒度,从而能够根据薄云层引入的适度衰减来调整其频谱效率。
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