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Study of Indian classical music by singing voice analysis and music source separation

机译:通过歌唱语音分析和音乐源分离研究印度古典音乐

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The pitch variations in classical singing are known for their pleasant appeal. But these also add to the challenges in acoustic analysis of singing voice signals. The characteristics of singing voice signal such as variable base frequency, inter-tonal gaps, and intense and rapid changes within each pitch-period need to be examined, along with changes in the background music signal. In this paper, we first separate and then characterize the singing voice and music signal, by analyzing the changes in production features. The pitch, formants and energy features are examined for two prominent compositions of classical singing, Alaap and Lyrical compositions. The production features are derived from the acoustic signal, using the signal processing methods such as short-time Fourier transform (STFT), linear-prediction analysis, and zero-frequency filtering. The music and vocal regions are separated by music-source separation, using STFT with different types of windowing techniques such as Blackman, Hamming and Kaiser windows. The background music is separated from the music mixture involves Similarity Matrix-based technique to model the background music. Results of the experiments indicate that Alaap regions have higher pitch in case of female singers, whereas Lyrics compositions have higher pitch frequency for male singers. Result so fusing different windowing techniques also give decent performance for music-source separation.
机译:古典歌唱的间距变化是为了他们愉快的吸引力而闻名。但这些还会增加了唱歌语音信号的声学分析挑战。需要检查绘制语音信号的特征,例如可变基础频率,间间隙间隙间隙,以及在每个音高周期内的强烈和快速变化,以及背景音乐信号的变化。在本文中,我们首先分开,然后通过分析生产特征的变化来表征歌唱语音和音乐信号。针对古典歌唱,Alaap和抒情组合物的两个突出组合物检查沥青,素脂和能量特征。使用诸如短时傅里叶变换(STFT),线性预测分析和零频滤波的信号处理方法,生产特征源自声信号。音乐和声乐区域通过音乐源分离分开,使用具有不同类型的窗口技术,如黑人,汉明和凯瑟窗口的STFT。背景音乐与音乐混合混合物隔开,涉及基于相似性的基于矩阵的技术来建模背景音乐。实验结果表明,在女歌手的情况下,Alaap地区具有更高的音高,而歌词组合物具有较高的男性歌手的音高频率。结果如此融合不同的窗口技术,也给出了音乐源分离的体面性能。

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