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Classification, positioning, and tracking of drones by HMM using acoustic circular microphone array beamforming

机译:使用声学圆形麦克风阵列波束形成,通过HMM进行分类,定位和跟踪无人机的跟踪

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Abstract This paper addresses issues with monitoring systems that identify and track illegal drones. The development of drone technologies promotes the widespread commercial application of drones. However, the ability of a drone to carry explosives and other destructive materials may pose serious threats to public safety. In order to reduce these threats, we propose an acoustic-based scheme for positioning and tracking of illegal drones. Our proposed scheme has three main focal points. First, we scan the sky with switched beamforming to find sound sources and record the sounds using a microphone array; second, we perform classification with a hidden Markov model (HMM) in order to know whether the sound is a drone or something else. Finally, if the sound source is a drone, we use its recorded sound as a reference signal for tracking based on adaptive beamforming. Simulations are conducted under both ideal conditions (without background noise and interference sounds) and non-ideal conditions (with background noise and interference sounds), and we evaluate the performance when tracking illegal drones.
机译:摘要本文解决了识别和跟踪非法无人机的监控系统的问题。无人机技术的发展促进了无人机的广泛商业应用。然而,无人机携带爆炸物和其他破坏性材料的能力可能会对公共安全构成严重威胁。为了减少这些威胁,我们提出了一种用于定位和跟踪非法无人机的声学方案。我们的拟议计划有三个主要联络点。首先,我们使用切换波束成形扫描天空以查找声源并使用麦克风阵列记录声音;其次,我们用隐藏的马尔可夫模型(HMM)执行分类,以便知道声音是否是无人机或其他东西。最后,如果声源是无人机,我们将记录的声音用作基于自适应波束成形的跟踪的参考信号。模拟在理想条件下进行(没有背景噪声和干扰声音)和非理想条件(具有背景噪声和干扰声音),我们在跟踪非法无人机时评估性能。

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