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Instrument Identification in Monophonic Music Using Spectral Information

机译:使用光谱信息仪器识别单声道音乐

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Various kinds of feature sets have been proposed to represent characteristics of musical instruments. While those feature sets have been chosen in a rather heuristic way, in this study, we demonstrate that the log-power spectrum suffices to represent characteristics that are essential to identifying instruments. For efficient encoding of instrument characteristics, we then reduce the number of features by applying the well-known dimension reduction techniques: principal component analysis (PCA) and linear discriminant analysis (LDA). For the classification of eight instruments, the features obtained by applying PCA-LDA to the log-power spectrum performed very well in comparison to existing methods with a recognition rate of 91% with as few as ten features.
机译:已经提出了各种特征集来表示乐器的特征。虽然这些特征集已以相当启发式的方式选择,但在本研究中,我们证明了日志功率谱足以表示对识别仪器至关重要的特征。为了有效地编码仪器特性,我们通过应用众所周知的尺寸减少技术来减少特征的数量:主成分分析(PCA)和线性判别分析(LDA)。对于八个仪器的分类,通过将PCA-LDA应用于日志功率谱获得的特征,与现有方法相比,具有91%的现有方法,只有10个特征。

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