一个高数据速率,软件定义的水声调制解调器

N. Nowsheen, C. Benson, M. Frater
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引用次数: 47

摘要

大多数水声调制解调器只能提供低数据速率。这主要是因为它们在低频率下工作,这限制了可用的信道带宽,从而限制了符号速率。低频声道受多径效应和多普勒效应的影响,对接收机的信号质量产生制约。因此,每个符号只有1或2位,有效的数据率进一步降低了错误控制编码。高频声信号在水中严重衰减,严重限制了高频链路的范围。然而,高频信号提供了更大的信号带宽,并可能改善信道质量,这指导了我们设计高频声学调制解调器用于水下通信的选择。现代现场可编程门阵列(fpga)能够以低成本提供良好的系统功能,并具有快速测试和开发通信算法的灵活性。它们在生产系统中也可能具有竞争力。本文介绍了一种完全用FPGA实现的高频、高数据速率调制解调器的研制现状。这与大多数现有的基于DSP处理器的调制解调器不同。由于是软件定义的,调制解调器是灵活的,因为参数可以相对容易地重新配置,随着设计的发展,最大限度地减少了返工的成本。该调制解调器不仅展示了基于FPGA的高频调制解调器的可行性,而且还将成为一个有价值的工具,可以更好地了解高频声信道,并展示吸收在水声网络中提高信道复用率的效用。该调制器已在FPGA中实现,以产生符合建模的实验室和开放水测试。该解调器已在Matlab中实现,并从实验室和开放水域测试的记录中恢复载波、代码同步和数据。目前正在将解调器编码到FPGA中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A high data-rate, software-defined underwater acoustic modem
Most underwater acoustic modems offer only low data rates. This is largely because they operate at low frequency, which limits the channel bandwidth available, and hence the symbol rate. The low frequency acoustic channel suffers from substantial multipath and doppler effects, which constrain the signal quality at the receiver. As a result only 1 or 2 bits per symbol are achieved, with the effective data rate further reduced by error control coding. High frequency acoustic signals are heavily attenuated in water, severely constraining the range of high frequency links. High frequency signals however offer substantially greater signal bandwidth, and probably improved channel quality which guides our design choice of a high frequency acoustic modem for underwater communication. Contemporary Field Programmable Gate Arrays (FPGAs) can provide good system functionality at low cost and with the flexibility to perform rapid testing and development of communication algorithms. They may also be competitive in production systems. In this paper we describe current progress in development of a high frequency, high data-rate modem which is implemented entirely in FPGA. This differs from most existing modems which are based on DSP processors. Being software defined, the modem is flexible because the parameters can be reconfigured with relative ease, minimising the cost of rework as the design evolves. This modem will not only demonstrate the feasibility of high frequency FPGA based modems, but will also be a valuable tool to provide a better understanding of the high frequency acoustic channel, and demonstrate the utility of absorption to enhance channel re-use rates in underwater acoustic networks. The modulator has been implemented in the FPGA, to produce laboratory and open water tests that conform to modelling. The demodulator has been implemented in Matlab, and recovers the carrier, code synchronisation and data from recordings of both laboratory and open water tests. Coding of the demodulator into the FPGA is currently in progress.
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