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Automatic frequency feature extraction for bird species delimitation

机译:自动频率特征提取用于鸟类划界

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Zoologists have long studied species distinctions, but until recently a quantitative system which could be applied to all birds which satisfies rigor and repeatability was absent from the zoology literature. A system which uses morphology, acoustic and plumage evidence to review species status of bird populations was presented by Tobias et al. The acoustic evidence in that work was extracted using manual inspection of spectrograms. The current work seeks to automate this process. Signal processing techniques are employed in this paper to automate the extraction of the acoustic features: maximum, minimum and peak frequency, and bandwidth. YIN-bird, a pitch detection algorithm optimized for birds, and sine-track method, successfully applied to bird species recognition previously, are the automatic methods employed. The performance of automatic methods is compared to the manual method currently used by zoologists. Both methods are well suited to this task, and demonstrate the strong potential to begin to automate the task of acoustic comparison of bird species.
机译:动物学家长期以来一直研究物种的区别,但是直到最近,动物学文献中仍缺乏一种可以应用于所有满足严谨性和可重复性的鸟类的定量系统。 Tobias等人提出了一种使用形态学,声学和羽毛证据来回顾鸟类种群物种状况的系统。这项工作中的声学证据是通过手动检查频谱图来提取的。当前的工作力图使这一过程自动化。本文采用信号处理技术来自动提取声学特征:最大,最小和峰值频率以及带宽。自动采用的方法是针对鸟类优化的音调检测算法YIN-bird,以及先前成功应用于鸟类物种识别的正弦跟踪方法。将自动方法的性能与动物学家当前使用的手动方法进行了比较。两种方法都非常适合此任务,并且证明了有潜力开始自动执行鸟类声音比较的任务。

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