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Cross correlation matched field localization for unknown emitted signal waveform using two-hydrophone

机译:使用双水电金的未知发射信号波形的互相关匹配场定位

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Source localization is a crucial issue in underwater acoustics. Traditional matched field processing (MFP) use large vertical arrays to locate an underwater acoustic target. However, the use of the large arrays not only increases equipment and computational cost but also some problems such as element failures and array title degrades the localization performance. In this paper, the matched field localization method of using two-hydrophone is proposed for underwater acoustic pulse signals with unknown emitted signal waveform. Firstly, using the received signal of hydrophones and the ocean channel which can be calculated from an acoustic propagation model, the emitted signal for every grid location over search region can be estimated by using the least squares solution in the time domain. And then, the estimated signal is convolved with the ocean channel pulse for various trial source locations to generate the replica signal. Finally, matched field localization of using two-hydrophone for underwater acoustic pulse signals of unknown emitted signal can be estimated by comparing the difference between the cross correlation of the received signal and the cross correlation of the replica signal to construct the localization error function yielding the ambiguity surface of localization function. Theoretical analysis and numerical simulation demonstrate the effectiveness of the proposed matched field localization and the localization performance were analyzed under different signal to noise ratio (SNR) cases by simulation trial.
机译:源定位是在水下声学的一个关键问题。传统的匹配场处理设备(MFP)使用大的垂直阵列来定位水声目标。然而,使用大型阵列不仅增加设备和计算成本,但也存在一些问题,如元素的失败和阵列称号降低了定位性能。在本文中,使用两水听器的匹配场定位方法,提出了具有未知发射信号波形水声脉冲信号。首先,利用水听器的接收信号,并且可以从一个声传播模型来计算所述信道海洋,用于在搜索区域的每个网格位置所发射的信号可以被使用在时域中的最小二乘解估计。然后,估计的信号被卷积关于各种试验的源位置来生成副本信号海洋信道脉冲。最后,使用两个水听器用于水下未知发射信号的声脉冲信号的匹配场定位可以通过比较接收到的信号的互相关和所述复制信号的互相关之间的差来构造定位误差函数得到的估计定位功能的模糊性表面。理论分析和数值模拟表明所提出的匹配场定位的有效性和定位性能,通过模拟试验不同的信噪比(SNR)的情况下下进行分析。

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