Methods for classification of nocturnal migratory bird vocalizations using Pseudo Wigner-Ville Transform

Anand Patti, G. Williamson
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引用次数: 13

Abstract

Many species of birds in Americas vocalize during nocturnal migration flights. Acoustic detection and classification of the calls show potential for study of the natural history of these migrant birds. In particular, information about the species' composition and number of birds involved in migration movements may be obtainable through acoustic techniques. Other methods such as radar monitoring may have capability only to assess the number, but not the composition. Mel Frequency Cepstral Coefficients-Gaussian Mixture Model-based methods (MFCC-GMM), Mel Frequency Cepstral Coefficients-Hidden Markov Model-based methods (MFCC-HMM) and spectrogram correlation-based methods have been proposed to automate the recognition/classification of the nocturnal flight calls. Here we investigate the choice of Pseudo Wigner-Ville Transform (PWVT) on MFCC-HMM-based classifier and correlation-based classifier performance. We use a collection of recordings of nocturnal flight calls of several species of thrushes and other bird species with similar calls to evaluate and compare classifiers.
基于伪Wigner-Ville变换的夜间候鸟叫声分类方法
许多鸟类在美洲的发声夜间迁移期间航班。鸣叫声的声学检测和分类为研究这些候鸟的自然历史提供了潜力。特别是,信息所涉及的物种的组成和数量的鸟类迁移运动可能通过声学技术获得。其他方法,如雷达监测,可能只能评估数量,而不能评估成分。提出了基于频率倒谱系数-高斯混合模型的方法(MFCC-GMM)、基于频率倒谱系数-隐马尔可夫模型的方法(MFCC-HMM)和基于频谱图相关性的方法来实现夜间飞行叫声的自动识别/分类。在这里,我们调查的选择伪能量变换(PWVT) MFCC-HMM-based分类器和correlation-based分类器的性能。我们使用一组夜间飞行时的录音画眉和其他几个品种的鸟类具有类似评估和比较分类器。
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