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Call detection and extraction using Bayesian inference

机译:使用贝叶斯推理的呼叫检测和提取

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摘要

Marine mammal vocalizations have always presented an intriguing topic for researchers not only because they provide an insight on their interaction, but also because they are a way for scientists to extract information on their location, number and various other parameters needed for their monitoring and tracking. In the past years field researchers have used submersible microphones to record underwater sounds in the hopes of being able to understand and label marine life. One of the emerging problems for both on site and off site researchers is the ability to detect and extract marine mammal vocalizations automatically and in real time given the copious amounts of existing recordings. In this paper, we focus on signal types that have a well-defined single frequency maxima and offer a method based on Sine wave modeling and Bayesian inference that will automatically detect and extract such possible vocalizations belonging to marine mammals while minimizing human interference. The procedure presented in this paper is based on global characteristics of these calls thus rendering it a species independent call detector/extractor.
机译:海洋哺乳动物发声一直是研究人员感兴趣的话题,这不仅是因为它们提供了对它们相互作用的深刻见解,而且还因为它们是科学家从中提取有关其位置,数量和监测和追踪所需的其他参数的信息的一种方式。在过去的几年中,野外研究人员使用潜水麦克风记录水下声音,以期能够理解和标记海洋生物。对于现场和非现场研究人员而言,新出现的问题之一是在现有大量录音条件下,能够自动,实时地检测和提取海洋哺乳动物声音的能力。在本文中,我们将重点放在具有明确定义的单频最大值的信号类型上,并提供一种基于正弦波建模和贝叶斯推断的方法,该方法将自动检测和提取海洋哺乳动物的这种可能的发声,同时最大程度地减少人为干扰。本文介绍的程序基于这些调用的全局特性,因此使其成为一种独立于物种的调用检测器/提取器。

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