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Experimental comparison of bearing estimation techniques for short passive towed sonar arrays

机译:短无源拖曳声纳阵列轴承估计技术的实验比较

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Although Low Frequency Active Sonar (LFAS) is considered one of the best means of detection and localization of a submarine in shallow water, the use of an active system is not always possible for tactical reasons. It is therefore interesting to include a passive mode in these systems by using the receiving array as a passive array. However, those arrays are smaller than conventional passive towed arrays and the frequencies used for passive submarine detection are lower than the LFAS frequencies, resulting in reduced bearing resolution and accuracy compared to dedicated passive systems. Several signal processing techniques have been studied to improve the performance of such systems in terms of bearing localization. The Extended Towed Array Measurement (ETAM) algorithm is a Synthetic Aperture technique based on the correlation of data snapshots on overlapping hydrophones. It creates a virtual longer aperture that offers better bearing resolution power than a conventional technique. Another widely considered approach is the Minimum Variance Distortionless Response beamformer (MVDR). We have implemented both algorithms and applied them to simulated as well as experimental data sets. In this paper, several passive experiments that were part of a larger Netherlands trial devoted to multistatic Low Frequency Active Sonar (LFAS) are analyzed. The receiving array aperture was 24 m. A target submarine was fitted with a broadband low frequency projector transmitting five intermittent tonals in the 500 Hz-700 Hz band. The bearing estimation accuracy and beamforming gain of MVDR, ETAM and of the conventional beamformer are measured on this data set and compared.
机译:虽然低频有源声纳(LFA)被认为是浅水中潜水艇的最佳检测和定位的最佳手段之一,但是对于战术原因,使用有源系统并不总是可以实现的。因此,通过使用接收阵列作为被动阵列,可以在这些系统中包括无源模式是有趣的。然而,那些阵列小于传统的被动牵引阵列,并且用于被动潜艇检测的频率低于LFA频率,导致与专用无源系统相比降低的承载分辨率和精度。已经研究了几种信号处理技术以提高轴承定位方面的这种系统的性能。扩展牵引阵列测量(ETAM)算法是一种合成孔径技术,基于数据快照对重叠流水声的相关性。它创建了一个虚拟较长的孔径,提供比传统技术更好的轴承分辨率。另一种广泛考虑的方法是最小方差失真响应波束形成器(MVDR)。我们已经实现了这两种算法并将它们应用于模拟以及实验数据集。在本文中,分析了几种被众多荷兰试验的被动实验,该试验专门致力于多晶的低频有源声纳(LFA)。接收阵列孔径为24米。目标潜水艇配有宽带低频投影仪,在500 Hz-700 Hz带中传输五个间歇调音。在该数据集上测量MVDR,ETAM和传统波束形成器的轴承估计精度和波束形成增益。

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