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Frequency-hopping acoustic communication in shallow water: Synchronization with time-reversal and united frame structure

机译:浅水中的跳频声通信:具有时间反转和统一帧结构的同步

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Owing to the special economic position and environment protection requirements for shallow water, shallow water acoustic communication becomes a hot research area in recent years. The frequency-hopping (FH) technique being considered as one robust and reliable communication plays a vital role in communication system design, because of the characteristics of shallow water channel, e.g., strong multipath, large fluctuation and fast time-varying. Synchronization processing is a key factor of FH system. In this paper, we introduce a real-time FH-MFSK acoustic communication system; adopt the passive time reversal approach to process synchronization for suppressing the multipath interference of underwater acoustic propagation. The united frame structure which contains passive time-reversal synchronization signal is proposed to reduce the impact of time-varying channel on the communication system. Also Convolutional coding is used to future improve the reliability performance of the system. In addition to experimental studies, we used TMS320C6713 DSP for system design. The laboratory pool tests and a sea trial at Wuyuan Bay, Xiamen were carried out. The experimental results demonstrate that the proposed scheme is particularly suitable for FH acoustic communication in shallow water where the channel characterizes as strong multipath, time-varying, fluctuation and random signal variations.
机译:由于浅水的特殊经济地位和环境保护要求,浅水声通信成为近年来研究的热点。跳频(FH)技术被认为是一种强大而可靠的通信,因为浅水通道具有强多径,波动大,时变快等特点,因此在通信系统设计中起着至关重要的作用。同步处理是跳频系统的关键因素。在本文中,我们介绍了一种实时FH-MFSK声学通信系统。采用被动时间反转方法进行过程同步,以抑制水声传播的多径干扰。为了减少时变信道对通信系统的影响,提出了一种包含无源时间反转同步信号的统一帧结构。卷积编码也用于将来改善系统的可靠性能。除了实验研究之外,我们还使用TMS320C6713 DSP进行系统设计。在厦门Wu源湾进行了实验室水池测试和海试。实验结果表明,该方案特别适合于浅水区跳频声通信,该信道具有较强的多径,时变,波动和随机信号变化的特点。

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