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Localization of Two Sound Sources Based on Compressed Matched Field Processing with a Short Hydrophone Array in the Deep Ocean

机译:基于压缩匹配现场处理的两个声源的定位,深海中的短流水声阵列

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Passive multiple sound source localization is a challenging problem in underwater acoustics, especially for a short hydrophone array in the deep ocean. Several attempts have been made to solve this problem by applying compressive sensing (CS) techniques. In this study, one greedy algorithm in CS theory combined with a spatial filter was developed and applied to a two-source localization scenario in the deep ocean. This method facilitates localization by utilizing the greedy algorithm with a spatial filter at several iterative loops. The simulated and experimental data suggest that the proposed method provides a certain localization performance improvement over the use of the Bartlett processor and the greedy algorithm without a spatial filter. Additionally, the effects on the source localization caused by factors such as the array aperture, number of hydrophones or snapshots, and signal-to-noise ratio (SNR) are demonstrated.
机译:被动多重声源定位是水下声学中的一个具有挑战性的问题,特别是对于深海中的短流水声阵列。已经通过应用压缩感测(CS)技术来解决几次尝试来解决这个问题。在这项研究中,CS理论中的一种贪婪算法与空间滤波器相结合,并应用于深海的双源定位场景。该方法通过利用多个迭代环路利用具有空间滤波器的贪婪算法来促进本地化。模拟和实验数据表明,所提出的方法通过使用Bartlett处理器和没有空间滤波器的贪婪算法提供了一定的定位性能改进。另外,对由诸如阵列孔径,流水发术或快照的因素造成的因素引起的源定位的效果和信噪比(SNR)。

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