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Deghosting in Multi-Passive Acoustic Sensors

机译:在多被动声学传感器中脱落

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In this paper, we describe a deghosting algorithm in multiple passive acoustic sensor environment. In a passive acoustic sensor system, a target is detected by its bearing to the sensor, and the target location is obtained from triangulation of bearings on different sensors. However, in multi-passive sensor and multi-target scenario, triangulation is difficult. This is because multi-target triangulation results in a number of ghost targets being generated. In order to remove the triangulating ghosts, the deghosting technique is essential to distinguish the true targets from the ghost targets. We suggest a deghosting algorithm by applying Bayes' theorem and the likelihood function on the acoustic signals. A probability related to acoustic signal on each triangulating point is recursively computed and updated at every time stamp or frame. The triangulating point will be classified as a true target, once its probability exceeds a predefined threshold. Furthermore, acoustic signal has propagation delay. The situation yields the triangulating location biased to the bearing of the nearest sensor. In our algorithm, the propagation delay problem is solved by matching the histories of bearing tracks, and yields the unbiased location that has similar emitting times for the sensors contributing to the triangulation point. The emitting times can be derived from detecting tunes and propagation delays. Performance result is presented on simulation data.
机译:在本文中,我们描述了多种无源声学传感器环境中的脱鹤算法。在被动声传感器系统中,通过其轴承检测到传感器的目标,并且目标位置是从不同传感器上的轴承的三角测量获得的。然而,在多被动传感器和多目标场景中,三角测量很难。这是因为多目标三角测量导致产生许多重影目标。为了去除三角形鬼魂,脱鹤技术对于区分鬼魂目标的真实目标是必不可少的。我们通过应用贝叶斯定理和声学信号上的似然函数来建议逐步算法。在每次邮票或帧时递归地计算和更新与每个三角测量点上的声信号相关的概率。一旦其概率超过预定阈值,三角测量点将被归类为真实目标。此外,声信号具有传播延迟。情况产生了偏置到最近传感器的轴承的三角形位置。在我们的算法中,通过匹配轴承轨道的历史来解决传播延迟问题,并产生具有与三角测量点有贡献的传感器类似的发光时间的非偏见位置。可以从检测调谐和传播延迟导出发光时间。仿真数据呈现性能结果。

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