Survey on Free Space Optical Communication: A Communication Theory Perspective
Обзор оптической связи в свободном пространстве: взгляд с позиции теории связи
2014-01-01
SCID: 54.1/gjyuzcmf
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FSO channel modelsatmospheric turbulence-induced fadingfree-space optical communicationmultiple-input multiple-output communicationoptical wireless communication
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Abstract (AI)
Optical wireless communication (OWC) refers to transmission in unguided propagation media through the use of optical carriers, i.e., visible, infrared (IR), and ultraviolet (UV) bands. In this survey, we focus on outdoor terrestrial OWC links which operate in near IR band. These are widely referred to as free space optical (FSO) communication in the literature. FSO systems are used for high rate communication between two fixed points over distances up to several kilometers. In comparison to radio-frequency (RF) counterparts, FSO links have a very high optical bandwidth available, allowing much higher data rates. They are appealing for a wide range of applications such as metropolitan area network (MAN) extension, local area network (LAN)-to-LAN connectivity, fiber back-up, backhaul for wireless cellular networks, disaster recovery, high definition TV and medical image/video transmission, wireless video surveillance/monitoring, and quantum key distribution among others. Despite the major advantages of FSO technology and variety of its application areas, its widespread use has been hampered by its rather disappointing link reliability particularly in long ranges due to atmospheric turbulence-induced fading and sensitivity to weather conditions. In the last five years or so, there has been a surge of interest in FSO research to address these major technical challenges. Several innovative physical layer concepts, originally introduced in the context of RF systems, such as multiple-input multiple-output communication, cooperative diversity, and adaptive transmission have been recently explored for the design of next generation FSO systems. In this paper, we present an up-to-date survey on FSO communication systems. The first part describes FSO channel models and transmitter/receiver structures. In the second part, we provide details on information theoretical limits of FSO channels and algorithmic-level system design research activities to approach these limits. Specific topics include advances in modulation, channel coding, spatial/cooperative diversity techniques, adaptive transmission, and hybrid RF/FSO systems.
Key Findings
1
Atmospheric turbulence-induced fading and weather sensitivity significantly limit the reliability and widespread deployment of long-range FSO systems.
2
FSO links offer substantially higher available optical bandwidth and potentially higher data rates than radio-frequency systems over fixed distances of several kilometers.
3
Recent FSO research adapts physical-layer techniques from RF communications, including multiple-input multiple-output transmission, cooperative diversity, and adaptive transmission.
4
The survey focuses on outdoor terrestrial near-infrared optical wireless links commonly known as free-space optical communication.
5
The survey reviews FSO channel and transceiver models, information-theoretic limits, and algorithmic system designs intended to approach those limits.
Research Object
Outdoor terrestrial free space optical (FSO) communication links operating in the near-infrared band
Research Subject
channel characteristics, information-theoretic limits, and physical-layer design approaches for improving the reliability and data-rate performance of FSO communication under atmospheric turbulence and weather conditions
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2014-01-01
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