Review and Analysis of Digital Signal Processing Algorithms for Coherent Optical Satellite Links

IF 0.9 4区 计算机科学 Q3 ENGINEERING, AEROSPACE
Carl Valjus, Raphael Wolf, Juraj Poliak
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引用次数: 0

Abstract

Coherent optical satellite links enable high-throughput communication and high accuracy ranging to and between satellites. Due to the ever-increasing demand for throughput, wavelength division multiplexing of polarization multiplexed optical signals is being considered as a solution to provide high-speed optical satellite links. Fiber-optic systems solve the implementation scalability problem of these systems by shifting design complexity to integrated circuits, thereby massively reducing the system footprint. As a result of the major advances in complementary metal-oxide-semiconductor (CMOS) technology, the implementation scalability of such systems in terrestrial fiber systems has been solved by shifting the system complexity to digital hardware, enabling intradyne reception and complex signal recovery algorithms. While the use of fiber-optic transceivers provides a fast path to high-speed coherent optical satellite links (OSLs), it requires additional mitigation techniques to combat the effects of both the OSL channel and the space environment. To support future satellite networks with Tbit/s optical links, it will be critical to further minimize the size, weight, and power (SWaP), cost and reliability of the transceivers. Thus, the development of custom intradyne optical transceivers for OSLs is emerging as an attractive option as the demand for throughput in satellite networks continues to grow. This would not only enable the use of a more optimized signal processing chain but also enable the use of radiation mitigation techniques optimized for the signal processing architecture and the use of soft-decision forward error correction (FEC) optimized for OSLs. The signal processing of coherent optical satellite receivers can be divided into three key subsystems: timing recovery, carrier synchronization, and equalization. This paper reviews state-of-the-art digital signal processing for optical communication to identify suitable algorithms for timing recovery, carrier frequency and phase compensation, equalization, and polarization demultiplexing with emphasis on high-throughput optical satellite links. Finally, the performance of different digital signal processing algorithms is assessed by numerical simulations considering different optical satellite link scenarios.

Abstract Image

卫星相干光链路数字信号处理算法综述与分析
相干光学卫星链路能够实现卫星之间的高吞吐量通信和高精度测距。由于对吞吐量的需求不断增加,偏振复用光信号的波分复用被认为是提供高速卫星光链路的一种解决方案。光纤系统解决了这些系统的可扩展性问题,将设计复杂性转移到集成电路上,从而大大减少了系统的占地面积。由于互补金属氧化物半导体(CMOS)技术的重大进步,通过将系统复杂性转移到数字硬件,实现内接收和复杂信号恢复算法,解决了地面光纤系统中此类系统的可扩展性。虽然使用光纤收发器提供了通往高速相干光学卫星链路的快速途径,但它需要额外的减缓技术来对抗相干光学卫星信道和空间环境的影响。为了支持未来具有Tbit/s光链路的卫星网络,进一步减小收发器的尺寸、重量和功率(SWaP)、成本和可靠性将是至关重要的。因此,随着对卫星网络吞吐量的需求不断增长,为光学卫星网络开发定制的片内光收发器正成为一种有吸引力的选择。这不仅可以使用更优化的信号处理链,还可以使用针对信号处理架构优化的辐射减缓技术,并使用针对OSLs优化的软决策前向纠错(FEC)。相干光卫星接收机的信号处理可分为定时恢复、载波同步和均衡三个关键子系统。本文回顾了光通信中最先进的数字信号处理,以确定适合的时间恢复、载波频率和相位补偿、均衡和极化解复用的算法,重点是高通量光学卫星链路。最后,针对不同的卫星光链路场景,通过数值模拟评估了不同数字信号处理算法的性能。
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来源期刊
CiteScore
4.10
自引率
5.90%
发文量
31
审稿时长
>12 weeks
期刊介绍: The journal covers all aspects of the theory, practice and operation of satellite systems and networks. Papers must address some aspect of satellite systems or their applications. Topics covered include: -Satellite communication and broadcast systems- Satellite navigation and positioning systems- Satellite networks and networking- Hybrid systems- Equipment-earth stations/terminals, payloads, launchers and components- Description of new systems, operations and trials- Planning and operations- Performance analysis- Interoperability- Propagation and interference- Enabling technologies-coding/modulation/signal processing, etc.- Mobile/Broadcast/Navigation/fixed services- Service provision, marketing, economics and business aspects- Standards and regulation- Network protocols
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