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Unsupervised Blue Whale Call Detection Using Multiple Time-Frequency Features

机译:使用多个时频功能无监督的蓝鲸呼叫检测

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In the context of bio-acoustic sciences, call detection is a critical task for understanding the behaviour of marine mammals such as the blue whale species (Balaeonoptera musculus) considered in this work. In this paper we present an approach to blue whale call detection from an unsupervised perspective. To achieve this, we use temporal and spectral features of audio acquired with a marine autonomous recording unit. The features considered are 46-dimensional and include the mel frequency ceptrum coefficients, chromagrams, and other scalar quantities; these features were then grouped via two different clustering algorithms. Our findings confirm the suitability of the proposed approach for isolating blue whale calls from other environmental sounds (as validated by a bio-acoustic specialist). This is a clear contribution for the annotation of blue whales calls, where the search for calls can now be performed by analysing the clusters identified instead of the entire recordings, thus saving time and effort for practitioners in bio-acoustics.
机译:在生物声学科学的背景下,呼叫检测是了解在这项工作中考虑的蓝鲸种类(BalaeoNoptera Musculus)等海洋哺乳动物的行为的关键任务。在本文中,我们从无监督的角度出示了一种蓝色鲸鱼呼叫检测的方法。为此,我们使用用船用自主记录单元获取的音频的时间和光谱特征。所考虑的特征是46维,包括MEL频率Ceptrum系数,Chromagrams和其他标量数;然后通过两个不同的聚类算法分组这些特征。我们的调查结果证实了所提出的方法,用于将蓝鲸呼叫与其他环境声音隔离(由生物声学专家验证)。这是对蓝鲸呼叫的注释的明确贡献,现在可以通过分析所识别的集群而不是整个录音来进行呼叫的搜索,从而节省生物声学中的从业者的时间和精力。

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