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Impact of Sea Waves on Performance of Shallow Water Acoustic Communications

机译:海浪对浅水声通信性能的影响

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Shallow water acoustic channels have fast time-variance, long-time multipath spread and large Doppler shift. Their transfer characteristics are influenced by many factors, such as: the operating frequency; the acoustic characteristics of sea surface and bottom; the ocean sound speed profile; the water depth; the depth and distance between the transmitters and the receivers; the variations of channel boundary; and, subsea objects. A time-varying channel impulse response has both deterministic and stochastic characteristics in a shallow water environment. Given the ocean environmental parameters, the deterministic impulse response can be calculated exactly by using underwater sound propagation models. However, it is extremely difficult to predict the stochastic impulse response due to its complexity. The method of ray tracing is quicker and more efficient than other methods such as with normal modes, parabolic equation and wave number integration in order to predict underwater water acoustic channels. At high frequencies, the ray tracing method is as accurate as others. Therefore, the ray tracing method has been widely used to simulate the channel impulse response in underwater acoustic communications. Here we focus on the impact of sea waves on the performance of single-carrier coherent underwater acoustic communications. Assuming that the sea wave is a single sinusoidal wave, we modify the BELLHOP ray module included in the Acoustic Toolbox in order to calculate the time-varying channel impulse response in a shallow water environment. Four time-varying channel impulse responses are presented for sea waves with a wave length of 50.0 m, and wave heights of 0.0, 0.5, 1.0 and 2.0 m. Furthermore, we investigate the impact of the wave height on the performance of the single-carrier coherent underwater acoustic communication system. Simulations demonstrate that bit error rates (BERs) of the system remain unchanged with time when the wave height equals 0.0 m. However, BERs change rapidly with time when the wave height is greater than 0.0 m. The higher the wave height, the faster the channel impulse response changes with time, and as a result, the higher the mean BER.
机译:浅水声道具有快速时间 - 方差,长时间多路径蔓延和大多普勒偏移。他们的转移特征受到许多因素的影响,例如:工作频率;海面和底部的声学特性;海洋音响速度;水深;发射器和接收器之间的深度和距离;信道边界的变化;和,海底对象。时变通道脉冲响应在浅水环境中具有确定性和随机特性。鉴于海洋环境参数,可以通过使用水下声音传播模型来计算确定性脉冲响应。然而,由于其复杂性而预测随机脉冲响应是极其困难的。光线跟踪方法比其他方法更快,更有效,例如具有正常模式,抛物线方程和波数集成,以预测水下水声道。在高频下,光线跟踪方法与其他方式一样准确。因此,光线跟踪方法已被广泛用于模拟水下声学通信中的信道脉冲响应。在这里,我们专注于海浪对单载波相干水下通信性能的影响。假设海浪是单个正弦波,我们修改了声学工具箱中包括的Bellhop射线模块,以便计算浅水环境中的时变通道脉冲响应。四个时变信道脉冲响应是为了海浪与50.0米的波长,和波的0.0,0.5,1.0至2.0μm的高度。此外,我们研究了波高对单载波相干水下后水声通信系统的性能的影响。模拟表明系统的误码率(BERs)随着波高等于0.0米的时间而保持不变。然而,在波高的时间大于0.0μm时,贝尔斯随着时间的推移而变化。波浪高度越高,通道脉冲响应越快随时间而变化,因此均值越高。

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