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Published on: March 20, 2017
Composite channel modeling and experimental investigation of free-space optical communications for urban scenario
Abstract:
In recent years, free space optical communication (FSO) has been extensively applied in the field of optical wireless communication due to its advantages of high bandwidth, low latency, and license-free spectrum. However, atmospheric turbulence, aerosol scattering and absorption, and platform pointing errors in urban environments severely impair communication reliability. To address these challenges, this paper proposes a composite channel model under the framework of an intensity modulation/direct detection (IM/DD) optical communication system, encompassing geometric transmission loss, atmospheric attenuation, turbulence-induced fading, and Rayleigh-distributed pointing errors. Based on this model, field tests were carried out with a self-developed FSOC terminal at a data rate of 2.5 Gbps under varying turbulence levels and meteorological conditions. The results demonstrate that, under weak to moderate turbulence, the system achieves stable transmission over link distances of 3 km to 13 km, with the average bit error rate approaching 10-8 in favorable conditions. Experimental outcomes show close agreement with the model's predictions, thereby validating the accuracy and applicability of the composite channel model and providing a reliable reference for performance evaluation and link planning of urban FSO systems.
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