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Atmospheric Turbulence-Immune Free Space Optical Communication System based on Discrete-Time Analog Transmission

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abstract

To effectively mitigate the influence of atmospheric turbulence, a novel discrete-time analog transmission free-space optical (DTAT-FSO) communication scheme is proposed. It directly maps information sources to discrete-time analog symbols via joint source-channel coding and modulation. Differently from traditional digital free space optical (TD-FSO) schemes, the proposed DTAT-FSO approach can automatically adapt to the variation of the channel state, with no need to adjust the specific modulation and coding scheme. The performance of the DTAT-FSO system was evaluated in both intensity modulation/direct detection (IM/DD) and coherent FSO systems for high-resolution image transmission. The results show that the DTAT-FSO reliably transmits images at low received optical powers (ROPs) and automatically enhances quality at high ROPs, while the TD-FSO experiences cliff and leveling effects when the channel state varies. With respect to the TD-FSO scheme, the DTAT-FSO scheme improved receiver sensitivity by 2.5 dB in the IM/DD FSO system and 0.8 dB in the coherent FSO system, and it achieved superior image fidelity under the same ROP. The automatic adaptation feature and improved performance of the DTAT-FSO suggest its potential for terrestrial, airborne, and satellite optical networks, addressing challenges posed by atmospheric turbulence.

fields

cs.IT 1

years

2024 1

verdicts

CONDITIONAL 1

representative citing papers

Fractional Fourier Domain PAPR Reduction

cs.IT · 2024-11-13 · conditional · novelty 5.0

DA-FrFDM dynamically selects the fractional Fourier transform angle per symbol block to reduce PAPR while retaining simple one-tap equalization via a quadratic phase multiplication.

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  • Fractional Fourier Domain PAPR Reduction cs.IT · 2024-11-13 · conditional · none · ref 8 · internal anchor

    DA-FrFDM dynamically selects the fractional Fourier transform angle per symbol block to reduce PAPR while retaining simple one-tap equalization via a quadratic phase multiplication.