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Modeling Onset Spectral Features for Discrimination of Drum Sounds

机译:建模起始频谱特征以区分鼓声

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Motivated by practical problems related to ongoing research on Candombe drumming (a popular afro-rooted rhythm from Uruguay), this paper proposes an approach for recognizing drum sounds in audio signals that models for sound classification the same audio spectral features employed in onset detection. Among the reported experiments involving recordings of real performances, one aims at finding the predominant Candombe drum heard in an audio file, while the other attempts to identify those temporal segments within a performance when a given sound pattern is played. The attained results are promising and suggest many ideas for future research.
机译:出于与正在进行的Candombe击鼓研究(来自乌拉圭的一种流行的基于非洲的节奏)相关的实际问题的动机,本文提出了一种识别音频信号中鼓声的方法,该方法用于对声音分类进行建模,该模型与开始检测中使用的相同音频频谱特征相同。在所报道的涉及录制真实表演的实验中,一个旨在寻找音频文件中听到的主要Candombe鼓,而另一个则试图在播放给定声音模式时识别出表演中的那些时间段。所获得的结果是有希望的,并为将来的研究提出了许多想法。

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