A recursive approach to compute bit error rate in underwater channels with multiple paths

C. Chen, A. Abdi
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Abstract

In underwater acoustic channels, signal is transmitted over several distinct paths, eigenpaths, from transmitter to receiver due to reflections at sea boundaries, where each eigenpath contains a dominant specular component and a number of scattered components. As a result, an underwater acoustic channel response is the superposition of several dominant specular components and numerous scattered components. Bit error rate (BER) in multipath fading channels has been extensively studied in the past. However, limited research has been conducted on fading channels with several dominant specular components. In this paper, BER in multipath channels with several specular components is studied. A new formula to compute the BER recursively and efficiently is derived. Then using Jensen's inequality, one specular component, Rice fading, is shown to provide the lowest possible BER. Upon using the new BER formula and Lagrange multipliers to solve a constrained optimization problem, it is further shown that for two dominant specular components, BER achieves its maximum when the two components are equally weighted. More results on BER for three and four specular paths are also presented. The results shed light on the impact of the number of specular paths on BER, as well as the maximum and minimum values of BER, which are of interest in underwater communication systems.
一种计算多路径水下信道误码率的递归方法
在水声信道中,由于海洋边界的反射,信号通过几个不同的路径(特征路径)从发射器到接收器传输,其中每个特征路径包含一个主要的镜面分量和一些散射分量。因此,水声通道响应是几个主要的镜面分量和许多散射分量的叠加。过去人们对多径衰落信道中的误码率进行了广泛的研究。然而,对具有几个主要镜面分量的衰落信道的研究还很有限。本文研究了具有多个镜面分量的多径信道的误码率问题。推导了递归高效计算误码率的新公式。然后利用Jensen不等式,一个镜面分量,Rice衰落,被证明可以提供尽可能低的误码率。利用新BER公式和拉格朗日乘子求解约束优化问题,进一步证明了对于两个优势反射分量,当两个分量的权重相等时,BER达到最大值。本文还给出了更多关于三路和四路反射路径误码率的结果。研究结果揭示了反射路径数对误码率的影响,以及误码率的最大值和最小值,这是水下通信系统的重要研究方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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