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Random fourier feature based music-speech classification

机译:基于随机的傅里叶功能的音乐语音分类

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摘要

The present paper proposes Random Kitchen Sink based music/speech classification. The temporal and spectral features such as spectral centroid, Spectral roll-off, spectral flux, Mel-frequency cepstral coefficients, entropy, and Zerocrossing rate are extracted from the signals. In order to show the competence of the proposed approach, experimental evaluations and comparisons are performed. Even though both speech and music signals differ in their production mechanisms, those share many common characteristics such as a common spectrum of frequency and are comparatively non-stationary which makes the classification difficult. The proposed approach explicitly maps the data to a feature space where it is linearly separable. The evaluation results shows that the proposed approach provides competing scores with the methods in the available literature.
机译:本文提出了随机厨房汇款的音乐/语音分类。 从信号中提取诸如光谱质心,光谱滚降,光谱磁通量,膜频率谱系数和Zerocross率的时间和光谱特征。 为了展示所提出的方法的能力,进行实验评估和比较。 尽管两个语音和音乐信号在其生产机制中不同,那些也有许多常见特性,例如常见的频率频谱,并且具有相对稳定的,这使得分类困难。 该方法将数据显式映射到具有线性可分性的特征空间。 评估结果表明,该方法提供了与可用文献中的方法的竞争得分。

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