Sun Lin, Wang Mei, Zhang Guoheng, Li Haisen, Huang Lan
College of Underwater Acoustic Engineering, Harbin Engineering University, Harbin 150001, China.
School of Physics and Physical Engineering, Qufu Normal University, Qufu 273165, China.
Sensors (Basel). 2019 Jun 17;19(12):2714. doi: 10.3390/s19122714.
Filtered multitone (FMT) modulation divides the communication band into several subbands to shorten the span of symbols affected by multipath in underwater acoustic (UWA) communications. However, there is still intersymbol interference (ISI) in each subband of FMT modulation degrading communication performance. Therefore, ISI suppression techniques must be applied to FMT modulation UWA communications. The suppression performance of traditional adaptive equalization methods often exploited in FMT modulation UWA communications is limited when the effect of ISI spans tens of symbols or large constellation sizes are used. Turbo equalization consisting of adaptive equalization and channel decoding can improve equalization performance through information exchanging and iterative processes. To overcome the shortcoming of traditional minimum mean square error (MMSE) equalization and effectively suppress the ISI with relatively low computation complexity, an FMT modulation UWA communication using low-complexity channel-estimation-based (CE-based) MMSE turbo equalization is proposed in this paper. In the proposed method, turbo equalization is first exploited to suppress the ISI in FMT modulation UWA communications, and the equalizer coefficients of turbo equalization are adjusted using the low-complexity CE-based MMSE algorithm. The proposed method is analyzed in theory and verified by simulation analysis and real data collected in the experiment carried out in a pool with multipath propagation. The results demonstrate that the proposed method can achieve better communication performance with a higher bit rate than the FMT modulation UWA communication using traditional MMSE adaptive equalization.
滤波多音(FMT)调制将通信频段划分为几个子频段,以缩短水下声学(UWA)通信中受多径影响的符号跨度。然而,FMT调制的每个子频段中仍然存在符号间干扰(ISI),这会降低通信性能。因此,必须将ISI抑制技术应用于FMT调制的UWA通信。当ISI的影响跨越数十个符号或使用大星座尺寸时,FMT调制UWA通信中常用的传统自适应均衡方法的抑制性能是有限的。由自适应均衡和信道解码组成的Turbo均衡可以通过信息交换和迭代过程提高均衡性能。为了克服传统最小均方误差(MMSE)均衡的缺点,并以相对较低的计算复杂度有效抑制ISI,本文提出了一种使用基于低复杂度信道估计(CE)的MMSE Turbo均衡的FMT调制UWA通信。在所提出的方法中,首先利用Turbo均衡来抑制FMT调制UWA通信中的ISI,并使用基于低复杂度CE的MMSE算法调整Turbo均衡的均衡器系数。对所提出的方法进行了理论分析,并通过在具有多径传播的水池中进行的实验收集的仿真分析和实际数据进行了验证。结果表明,与使用传统MMSE自适应均衡的FMT调制UWA通信相比,所提出的方法可以以更高的比特率实现更好的通信性能。