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Recognition of harmonic sounds in polyphonic audio using a missing feature approach

机译:使用缺失特征方法识别和弦音频中的和声

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A method based on local spectral features and missing feature techniques is proposed for the recognition of harmonic sounds in mixture signals. A mask estimation algorithm is proposed for identifying spectral regions that contain reliable information for each sound source and then bounded marginalization is employed to treat the feature vector elements that are determined as unreliable. The proposed method is tested on musical instrument sounds due to the extensive availability of data but it can be applied on other sounds (i.e. animal sounds, environmental sounds), whenever these are harmonic. In simulations the proposed method clearly outperformed a baseline method for mixture signals.
机译:提出了一种基于局部光谱特征和缺失特征技术的方法,用于识别混合信号中的谐波声音。提出了一种掩模估计算法,用于识别包含每个声源的可靠信息的频谱区域,然后采用有界边缘化来处理确定为不可靠的特征向量元素。由于数据的广泛可用性,所提出的方法在乐器声音上进行测试,但它可以应用于其他声音(即动物声音,环境声音),每当这些都是谐波。在仿真中,所提出的方法显然优于混合信号的基线方法。

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