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Multisensor adaptive bayesian tracking under time-varying target detection probability

机译:时变目标检测概率下的多传感器自适应贝叶斯跟踪

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摘要

In practical tracking applications, the target detection performance may be unknown and also change rapidly in time. This work considers a network of sensors and develops a target-tracking procedure able to adapt and react to the time-varying changes of the network detection probability. The proposed adaptive tracker is validated using extensive computer simulations and real-world experiments, testing a network of high-frequency radars for maritime surveillance and an underwater network of autonomous underwater vehicles for antisubmarine warfare.
机译:在实际的跟踪应用中,目标检测性能可能是未知的,并且会随时间快速变化。这项工作考虑了传感器网络,并开发了一种目标跟踪程序,该程序能够适应网络检测概率的时变变化并做出反应。拟议的自适应跟踪器已通过广泛的计算机仿真和真实世界的实验验证,测试了用于海上监视的高频雷达网络和用于反潜战的无人驾驶水下航行器的水下网络。

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