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水下湍流信道中指向-抖动误差对无线光通信系统性能影响分析

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水下无线光通信(UWOC)系统受到吸收、散射、海洋湍流等信道特性以及无线光通信系统抖动和指向误差的影响,导致信道衰落并影响UWOC系统误码率。首先推导了基于Yue谱的高斯光束经过接收孔径平均后的闪烁指数解析式,其次建立了水下湍流信道无线光通信中的指向-抖动误差模型,该模型综合考虑了水体衰减、海洋湍流等信道衰减和指向-抖动误差损耗引起的链路衰减。同时,引入了信噪比校正因子以模拟高斯光束在衰减信道中的位置衰减量,并分别给出了有无抖动误差时系统误码率的表达式。研究结果表明,在弱湍流信道的UWOC系统中,相比于抖动误差,指向误差对系统性能的影响更大。接收孔径平均技术对湍流信道衰减和指向-抖动误差均具有显著的改善效果。
Influence Analysis of Pointing-Jitter Error on Performance of Wireless Optical Communication Systems in Underwater Turbulent Channels
Objective Due to the increasing ocean exploration by a large number of scientific activities and military operations,researchers are investigating high-speed,stable,and long-range underwater wireless communication technologies.Compared with traditional acoustic and radio frequency communications,underwater wireless optical communication(UWOC)systems are attracting a great deal of interest from researchers due to their advantages of big bandwidth,high information transmission rate,and sound confidentiality.However,UWOC systems are not only affected by water absorption but also suffer from the loss caused by misalignment between receiving and transmitting systems or the loss caused by pointing error,which cannot be neglected.Additionally,ocean turbulence also causes flickering of received light intensity,affecting the system performance.However,the inconsistency of salinity diffusion and heat diffusion mechanisms in real marine environments causes unstable seawater stratification,which results in the scintillation effect of the Gaussian beam in the ocean turbulence channel deviating significantly from the actual marine environment.Therefore,a pointing-jitter error model in UWOC is developed by the unstable Yue ocean power spectrum with ocean water stratification.The model takes into account water body attenuation,pointing-jitter error loss,and link attenuation caused by seawater turbulence,and finally investigates the effect of aperture averaging technique on system performance.Methods To more accurately model underwater wireless communication systems,we discuss the effect of pointing-jitter error on the performance of laser communication systems based on a turbulent seawater fading channel.Firstly,for the pointing error,we introduce the relative position parameter of the laser transmitter and the deflection angle parameter to determine the state of the transmitter.Meanwhile,the jitter error is employed to characterize the effect of seawater turbulence on the receiver body.For the effect of seawater turbulence,we adopt the Yue spectrum that considers the stratification instability of the ocean water body and give an analytical equation for the scintillation index of a Gaussian beam based on the Yue spectrum after aperture averaging.Additionally,we build a composite channel model including water body attenuation,pointing-jitter error loss,and seawater turbulence,and introduce a signal-to-noise ratio correction factor to simulate the positional attenuation of the Gaussian beam in the attenuation channel.At the same time,we give the bit error rate(BER)expressions of the system based on the on-off key(OOK)modulation with and without the jitter error to measure the system performance respectively.Results and Discussions To obtain the scintillation index of Gaussian beam transmission under the parameter of variable temperature salt vortex diffusion ratio in the water column,we numerically simulate the scintillation index of Gaussian beams in ocean turbulence with the transmission distance and different aperture sizes.The results show that the aperture averaging technique has the effect of suppressing the scintillation index caused by both stable and unstable seawater stratification,but the suppression effect is nonlinearly related to both aperture sizes(Fig.6).The system decreases the turbulence suppression effect with the increasing aperture size.The effects of pointing error and jitter error in the composite channel on the UWOC system are further investigated.In the jitter error-free channel,a change of 0.04 m in the transmitter position sending can greatly affect the system performance,and the BER performance of the system decreases by 17.15 dB in strong turbulence,and 20.55 dB in weak turbulence(Figs.7 and 8).In the composite channel that includes water body attenuation,pointing-jitter error loss,and seawater turbulence,we find that in the weak turbulence channel of the UWOC system,the effect of pointing error on the system performance is greater than that of jitter error on the system performance,while the effect of weak turbulence on the system performance is less(Fig.11).Conclusions The results show that the aperture averaging technique has an inhibiting effect on the scintillation index caused by both stabilization and instability of seawater stratification,but the inhibiting effect is nonlinearly related to both aperture sizes.As the aperture size increases,the turbulence suppression effect gradually decreases.In the jitter error-free channel,a change of 0.04 m in the transmitter position sending can greatly affect the system performance,and the BER performance of the system decreases by 17.15 dB in strong turbulence and 20.55 dB in weak turbulence.In the composite channel containing water fading,pointing-jitter error loss,and seawater turbulence,we find that in the UWOC system of the weak turbulence channel,the pointing error has a greater effect on the system performance than the jitter error has on the system performance,while the weak turbulence has a smaller effect on the system performance.Additionally,the aperture averaging technique can significantly improve both turbulent channel attenuation and pointing-jitter error,while the suppression of seawater turbulence is the most obvious.Our study is of guiding significance for an in-depth understanding of the transmission characteristics of Gaussian beams in real ocean channels and provides an effective theoretical basis for the application of aperture averaging technique to suppress turbulence in complex ocean environments.Meanwhile,references are offered for related research on underwater laser localization.

oceanic opticswireless optical transmissionoceanic turbulencepointing errorscintillation indexbit error rate

杨祎、闵展望、姚欣钰、窦雨昂、邱晓芬、张建磊、贺锋涛

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西安邮电大学电子工程学院,陕西西安 710121

海洋光学 无线光通信 海洋湍流 指向误差 闪烁指数 误码率

装备预研教育部联合基金水下信息与控制重点实验室资助项目陕西省微波光子与光通信创新团队

8091B032130JCKY2021207CD022021TD-09

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(12)