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首页> 外文期刊>Information Sciences: An International Journal >Distributed multi-target tracking with Y-shaped passive linear array sonars for effective ghost track elimination
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Distributed multi-target tracking with Y-shaped passive linear array sonars for effective ghost track elimination

机译:用Y形被动线性阵列声纳分布式多目标跟踪,用于有效幽灵轨道消除

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摘要

AbstractY-shaped passive linear array sonar (PLAS) systems are composed of three sensor legs that independently report bearings-only measurements with bearing-ambiguity. Given that many ghost targets are generated due to the bearing-ambiguity, multi-target tracking using a PLAS system is a challenging problem, especially when target miss-detection and clutter are also considered. Centralized methods in most cases can obtain good tracking performances. However, they suffer from heavy communicational burdens and computational loads, as all measurements generated by all sensors are sent to the fusion center (FC). To reduce the communicational and computational burdens, a distributed target tracking method is proposed. In this method, to reduce the numbers of false tracks and ghost tracks, the original bearings-only measurements are temporarily tracked without considering the bearing-ambiguity at each local PLAS using a linear multi-target integrated probabilistic data association (LM-IPDA) tracker, which can handle false track discrimination (FTD). Then, the estimated bearings-only measurements from each local tracker are transmitted to the FC, where multiple targets are tracked using the sequential LM-IPDA while considering the bearing-ambiguity problem. To further reduce the number of false tracks generated by the bearing-ambiguity, a novel measurement-to-track assignment method is proposed for the distributed tracking method. Simulations show that the proposed methods have high tracking accuracies, as well as fewer communicational and computational loads, for multi-target tracking with the Y-shaped PLAS system.]]>
机译:<![cdata [ 抽象 Y形无源线性阵列声纳(PLAS)系统由三个传感器腿组成,可通过轴承模糊独立地报告轴承的测量。鉴于由于轴承歧义而产生的许多重影目标,使用PLAS系统的多目标跟踪是一个具有挑战性的问题,特别是当考虑目标错过检测和杂波时。大多数情况下的集中方法可以获得良好的跟踪性能。然而,它们遭受了繁重的沟通负担和计算负载,因为所有传感器产生的所有测量都被发送到融合中心(FC)。为了减少通信和计算负担,提出了一种分布式目标跟踪方法。在该方法中,为了减少假轨道和幽灵轨道的数量,仅使用线性多目标集成概率数据关联(LM-IPDA)跟踪器,仅暂时跟踪原始轴承的测量。在不考虑每个本地PLA的轴承模糊,这可以处理错误的轨道歧视(FTD)。然后,将估计的轴承 - 仅来自每个本地跟踪器的测量值被传输到FC,其中使用顺序LM-IPDA跟踪多个目标,同时考虑轴承歧义问题。为了进一步减少由轴承模糊产生的假轨道的数量,提出了一种新的测量 - 跟踪分配方法,用于分布式跟踪方法。模拟表明,该方法具有高跟踪精度,以及较少的沟通和计算负载,用于使用Y形PLAS系统进行多目标跟踪。 < / ce:摘要>]]>

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