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Joint Time-Reversal Space-Time Block Coding and Adaptive Equalization for Filtered Multitone Underwater Acoustic Communications

机译:滤波多音水下声通信的时空联合时空编码和自适应均衡

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摘要

Underwater acoustic (UWA) sensor networks demand high-rate communications with high reliability between sensor nodes for massive data transmission. Filtered multitone (FMT) is an attractive multicarrier technique used in high-rate UWA communications, and can obviously shorten the span of intersymbol interference (ISI) with high spectral efficiency and low frequency offset sensitivity by dividing the communication band into several separated wide sub-bands without guard bands. The joint receive diversity and adaptive equalization scheme is often used as a general ISI suppression technique in FMT-UWA communications, but large receive array for high diversity gain has an adverse effect on the miniaturization of UWA sensor nodes. A time-reversal space-time block coding (TR-STBC) technique specially designed for frequency-selective fading channels can replace receive diversity with transmit diversity for high diversity gain, and therefore is helpful for ISI suppression with simple receive configuration. Moreover, the spatio-temporal matched filtering (MF) in TR-STBC decoding can mitigate ISI obviously, and therefore is of benefit to lessen the complexion of adaptive equalization for post-processing. In this paper, joint TR-STBC and adaptive equalization FMT-UWA communication method is proposed based on the merit of TR-STBC. The proposed method is analyzed in theory, and its performance is assessed using simulation analysis and real experimental data collected from an indoor pool communication trial. The validity of the proposed method is proved through comparing the proposed method with the joint single-input–single-output (SISO) and adaptive equalization method and the joint single-input–multiple-output (SIMO) and adaptive equalization method. The results show that the proposed method can achieve better communication performance than the joint SISO and adaptive equalization method, and can achieve similar performance with more simpler receive configuration as the joint SIMO and adaptive equalization method.
机译:水下声(UWA)传感器网络要求传感器节点之间的高速率通信和高可靠性,以进行大量数据传输。滤波多音(FMT)是用于高速率UWA通信的一种有吸引力的多载波技术,通过将通信频带划分为几个单独的宽子载波,可以明显缩短符号间干扰(ISI)的范围,具有高频谱效率和低频偏移灵敏度。没有护卫队的乐队。联合接收分集和自适应均衡方案通常用作FMT-UWA通信中的通用ISI抑制技术,但是用于高分集增益的大接收阵列对UWA传感器节点的小型化有不利影响。专为选频衰落信道而设计的逆时空时空分组编码(TR-STBC)技术可以用发射分集代替接收分集,以实现高分集增益,因此有助于以简单的接收配置抑制ISI。而且,TR-STBC解码中的时空匹配滤波(MF)可以明显减轻ISI,因此有利于减轻自适应均衡的后处理复杂度。基于TR-STBC的优点,提出了TR-STBC与自适应均衡FMT-UWA联合通信方法。从理论上分析了所提出的方法,并使用模拟分析和从室内游泳池通讯试验中收集的实际实验数据来评估其性能。通过将本方法与联合单输入单输出(SISO)和自适应均衡方法以及联合单输入多输出(SIMO)和自适应均衡方法进行比较,证明了该方法的有效性。结果表明,与联合SISO和自适应均衡方法相比,该方法可以实现更好的通信性能,并且在接收配置方面更容易达到类似的性能。

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