Optical Communication in Space: Challenges and Mitigation Techniques
Оптическая связь в космосе: проблемы и методы их устранения
2016-08-26
SCID: 54.1/7xrb3kkn
Discuss with AI
atmospheric turbulencefree-space optical communicationground-to-satellite linksinter-satellite linksorbital angular momentum
Figures from the paper
Abstract (AI)
In recent years, free space optical (FSO) communication has gained significant importance owing to its unique features: large bandwidth, license free spectrum, high data rate, easy and quick deployability, less power, and low mass requirements. FSO communication uses optical carrier in the near infrared band to establish either terrestrial links within the Earth's atmosphere or inter-satellite/deep space links or ground-to-satellite/satellite-to-ground links. It also finds its applications in remote sensing, radio astronomy, military, disaster recovery, last mile access, backhaul for wireless cellular networks, and many more. However, despite of great potential of FSO communication, its performance is limited by the adverse effects (viz., absorption, scattering, and turbulence) of the atmospheric channel. Out of these three effects, the atmospheric turbulence is a major challenge that may lead to serious degradation in the bit error rate performance of the system and make the communication link infeasible. This paper presents a comprehensive survey on various challenges faced by FSO communication system for ground-to-satellite/satellite-to-ground and inter-satellite links. It also provides details of various performance mitigation techniques in order to have high link availability and reliability. The first part of this paper will focus on various types of impairments that pose a serious challenge to the performance of optical communication system for ground-to-satellite/satellite-to-ground and inter-satellite links. The latter part of this paper will provide the reader with an exhaustive review of various techniques both at physical layer as well as at the other layers (link, network, or transport layer) to combat the adverse effects of the atmosphere. It also uniquely presents a recently developed technique using orbital angular momentum for utilizing the high capacity advantage of optical carrier in case of space-based and near-Earth optical communication links. This survey provides the reader with comprehensive details on the use of space-based optical backhaul links in order to provide high capacity and low cost backhaul solutions.
Key Findings
1
Atmospheric absorption, scattering, and turbulence impair FSO systems, with turbulence identified as the major cause of bit-error-rate degradation and link infeasibility.
2
Free-space optical communication offers high bandwidth, license-free spectrum, high data rates, and reduced power and mass requirements for terrestrial and space links.
3
It reviews mitigation techniques across physical, link, network, and transport layers to improve optical-link availability and reliability.
4
The paper surveys atmospheric challenges affecting ground-to-satellite, satellite-to-ground, and inter-satellite optical links.
5
The survey highlights orbital angular momentum as a recently developed technique for exploiting the high-capacity potential of optical carriers in space and near-Earth links.
Research Object
Free-space optical (FSO) communication links, particularly ground-to-satellite, satellite-to-ground, and inter-satellite links
Research Subject
Atmospheric impairments and mitigation techniques affecting the performance, link availability, and reliability of space-based FSO communication systems
Publication Details
Publication Date
2016-08-26
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest