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Using syllabic Mel cepstrum features and k-nearest neighbors to identify anurans and birds species

机译:使用音节梅尔倒谱特征和k近邻来识别无核动物和鸟类

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Developing efficient methods for monitoring and identifying species of birds and anurans in natural environments are an imperative, in order to attend the concern caused by amphibian decline and trends in decreasing bird population sizes. In this work, a prospective solution to contribute to the mentioned problem is presented by an infrastructure implementation designed to deploy applications in disaster relief and environmental monitoring scenarios, and by formulating a novel application based on Mel-frequency cepstrum coefficients (MFCC), principal components analysis (PCA), and k-nearest neighbors (k — NN) that allows identifying species from segmented syllables in recorded audio. A performance evaluation of the implemented set of algorithms is also presented.
机译:为了应对两栖动物数量减少和鸟类种群数量减少趋势引起的关注,必须开发一种在自然环境中监测和识别鸟类和无核物种的有效方法。在这项工作中,通过设计用于在灾难救济和环境监测场景中部署应用程序的基础结构实现,以及通过基于梅尔频率倒谱系数(MFCC),主要成分的新应用程序制定,提出了一种有助于解决上述问题的前瞻性解决方案。分析(PCA)和k最近邻(k_NN),从而可以从录制的音频中的分段音节中识别出种类。还介绍了已实现的算法集的性能评估。

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