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首页> 外文期刊>IEEE Journal of Oceanic Engineering >Temporal resolutions of time-reversal and passive-phase conjugation for underwater acoustic communications
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Temporal resolutions of time-reversal and passive-phase conjugation for underwater acoustic communications

机译:水下声通信的时间反转和无源相位共轭的时间分辨率

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摘要

In this paper, we study the temporal resolution of a time-reversal or passive-phase conjugation process as applied to underwater acoustic communications. Specifically, we address 1) the time resolution or the pulse width of a back-propagated time-compressed pulse as compared with the original transmitted pulse; 2) the effectiveness of temporal focusing as measured by the peak-to-sidelobe ratio of the back-propagated or phase-conjugated pulse (both pulse elongation and sidelobe leakages are causes of intersymbol interference and bit errors for communications); 3) the duration of temporal focusing or the temporal coherence time of the underwater acoustic channel; and 4) the stability of temporal focusing as measured by the phase fluctuations of successive pulses (symbols). Binary phase-shift keying signals collected at sea from a fixed source to a fixed receiver are used to extract the above four parameters and are compared with simulated results. Mid-frequency (3-4-kHz) data were collected in a dynamic shallow-water environment, exhibiting high temporal fluctuations over a scale of minutes. Despite this, the channel is found to be highly coherent over a length of 17 s. As a result, only one probe signal is used for 17 s of data. The bit error rate and variance of the symbol phase fluctuations are measured as a function of the number of receivers. They are of the same order as that calculated from the simulated data. The agreement suggests that these two quantities could be modeled for a communication channel with high coherence time. The phase variance can be used to determine the maximum data rate for a phase-shift keying signal for a given signal bandwidth and a given number of receivers.
机译:在本文中,我们研究了应用于水下声通信的时间反转或被动相位共轭过程的时间分辨率。具体来说,我们解决以下问题:1)与原始传输脉冲相比,反向传播的时间压缩脉冲的时间分辨率或脉冲宽度; 2)通过反向传播或相位共轭脉冲的峰/旁瓣比来测量时间聚焦的有效性(脉冲伸长和旁瓣泄漏都是符号间干扰和通信误码的原因); 3)水下声通道的时间聚焦持续时间或时间相干时间; 4)通过连续脉冲(符号)的相位波动测量的时间聚焦的稳定性。从固定源到固定接收器的海上采集的二进制相移键控信号用于提取上述四个参数,并与模拟结果进行比较。在动态浅水环境中收集了中频(3-4 kHz)数据,在几分钟的时间内显示出高的时间波动。尽管如此,发现该通道在17 s的长度上具有高度连贯性。结果,仅一个探测信号用于17 s的数据。根据接收器数量来测量误码率和符号相位波动的方差。它们与从模拟数据计算出的顺序相同。该协议表明,可以为具有高相干时间的通信信道建模这两个量。相位方差可用于确定给定信号带宽和给定数量的接收器的相移键控信号的最大数据速率。

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