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Generalised features for bird vocalisation retrieval in acoustic recordings

机译:录音中鸟类发声检索的通用功能

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摘要

Bioacoustic monitoring has become a significant research topic for species diversity conservation. Due to the development of sensing techniques, acoustic sensors are widely deployed in the field to record animal sounds over a large spatial and temporal scale. With large volumes of collected audio data, it is essential to develop semi-automatic or automatic techniques to analyse the data. This can help ecologists make decisions on how to protect and promote the species diversity. This paper presents generic features to characterize a range of bird species for vocalisation retrieval. In the implementation, audio recordings are first converted to spectrograms using short-time Fourier transform, then a ridge detection method is applied to the spectrogram for detecting points of interest. Based on the detected points, a new region representation are explored for describing various bird vocalisations and a local descriptor including temporal entropy, frequency bin entropy and histogram of counts of four ridge directions is calculated for each sub-region. To speed up the retrieval process, indexing is carried out and the retrieved results are ranked according to similarity scores. The experiment results show that our proposed feature set can achieve 0.71 in term of retrieval success rate which outperforms spectral ridge features alone (0.55) and Mel frequency cepstral coefficients (0.36).
机译:生物声监测已成为物种多样性保护的重要研究课题。由于感测技术的发展,声传感器在现场被广泛使用,以在较大的时空尺度上记录动物的声音。由于收集了大量音频数据,因此必须开发半自动或自动技术来分析数据。这可以帮助生态学家就如何保护和促进物种多样性做出决策。本文介绍了通用特征,以表征用于发声检索的多种鸟类。在实现中,首先使用短时傅立叶变换将音频记录转换为频谱图,然后将脊检测方法应用于频谱图以检测感兴趣的点。基于检测到的点,探索用于描述各种鸟类发声的新区域表示,并为每个子区域计算包括时间熵,频点熵和四个山脊方向计数的直方图的局部描述符。为了加快检索过程,执行索引并根据相似性评分对检索结果进行排名。实验结果表明,我们提出的特征集在检索成功率方面可以达到0.71,优于单独的谱脊特征(0.55)和梅尔频率倒谱系数(0.36)。

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