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Monte-Carlo-based channel characterization for underwater optical communication systems

机译:基于蒙特卡洛的水下光通信系统的信道表征

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We consider channel characterization for underwater wireless optical communication (UWOC) systems. We focus on the channel impulse response and, in particular, quantify the channel time dispersion for different water types, link distances, and transmitter/receiver characteristics, taking into account realistic parameters. We use the Monte Carlo approach to simulate the trajectories of emitted photons propagating in water from the transmitter towards the receiver. During their propagation, photons are absorbed or scattered as a result of their interaction with different particles present in water. To model angle scattering, we use the two-term Henyey–Greenstein model in our channel simulator. We show that this model is more accurate than the commonly used Henyey–Greenstein model, especially in pure sea waters. Through the numerical results that we present, we show that, except for highly turbid waters, the channel time dispersion can be neglected when working over moderate distances. In other words, under such conditions, we do not suffer from any inter-symbol interference in the received signal. Lastly, we study the performance of a typical UWOC system in terms of bit-error-rate using the simple on–off-keying modulation. The presented results give insight into the design of UWOC systems.
机译:我们考虑水下无线光通信(UWOC)系统的信道表征。我们专注于信道冲激响应,尤其是在考虑实际参数的情况下,针对不同的水类型,链路距离和发射机/接收机特性来量化信道时间色散。我们使用蒙特卡洛方法来模拟在水中从发射器向接收器传播的发射光子的轨迹。在光子的传播过程中,由于光子与水中不同粒子的相互作用,光子被吸收或散射。为了建模角度散射,我们在通道模拟器中使用了两项Henyey-Greenstein模型。我们证明,该模型比常用的Henyey-Greenstein模型更准确,尤其是在纯海水中。通过我们给出的数值结果,我们表明,除了高度浑浊的水以外,在中等距离下工作时,可以忽略通道时间的分散。换句话说,在这种情况下,我们不会在接收信号中遭受任何符号间干扰。最后,我们使用简单的开关键控调制来研究典型UWOC系统在误码率方面的性能。提出的结果使人们对UWOC系统的设计有了深刻的了解。

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