线性调频连续波主动声纳信号处理

Dali Liu, Yuntao Liu, H. Cai, Yongfeng Wang, Hong Zhang
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引用次数: 7

摘要

线性调频连续波(LFMCW)应用于连续主动声呐(CAS)中。通过仿真和海试数据,对回波探测和直接路径干扰抑制方法进行了研究和评价。为了检测LFMCW回波,接收信号首先被发射信号解调,得到与LFMCW雷达相似的去啁啾信号。然而,在主动声纳情况下,目标速度与声速相比不再是可以忽略不计的。因此,去啁啾信号不能简化为连续波信号。它是一种线性调频信号,其扫频率和中心频率与目标的速度和距离有关。通常用于LFM信号检测和估计的时频分析方法可用于LFMCW主动声呐。本文选择分数阶傅里叶变换(FRFT)。仿真和实验结果表明,采用去啁啾- frft接收机的LFMCW主动声纳比采用匹配滤波器接收机的LFM脉冲主动声纳具有更高的处理增益。为了减少来自发射机的直接路径干扰(DPI),首选双静态模式。通过在频域中滤波去啁啾信号来消除DPI。这种方法的主要缺点是靠近发射机的目标会丢失。反chirp- frft算法的缺点是每长工作周期只能得到一次处理结果,不利于目标跟踪。未来的工作将集中在刷新率的提高上。
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Linear frequency-modulated continuous wave active sonar signal processing
Linear frequency-modulated continuous wave (LFMCW) is applied in continuous active sonar (CAS). Methods for echo detection and direct path interference (DPI) suppression are studied and evaluated by simulation and sea trial data. To detect the LFMCW echo, the received signal is first demodulated by the transmitting signal, resulting in a de-chirped signal, which is similar as in LFMCW radar. However, in active sonar case the target velocity is no longer negligible comparing with the sound velocity. Thus the de-chirped signal cannot be simplified as a CW signal. Instead, it is a LFM signal, with its sweep rate and center frequency related with the velocity and distance of the target. Time-frequency analysis methods which are generally used to detect and estimate LFM signals can then be used in LFMCW active sonar. In this work, the Fractional Fourier Transform (FRFT) is chosen. Simulations and experiments show that LFMCW active sonar with the de-chirp-FRFT receiver can get much higher processing gain than conventional LFM pulsed active sonar with a matched filter (MF) receiver. To reduce the direct path interference (DPI) from the transmitter, bi-static mode is preferred. DPI is eliminated by filtering the de-chirped signal in the frequency domain. The major drawback of this method is that targets close to the transmitter will be lost. The disadvantage of the de-chirp-FRFT algorithm is that the processing results can be obtained only once every long work cycle, which is not propitious to target tracking. The future work will be focused on the improvement of refresh rate.
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