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Singer and music discrimination based threshold in polyphonic music

机译:和弦音乐中基于歌手和音乐歧视的阈值

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Song and music discrimination play a significant role in multimedia applications such as genre classification and singer identification. Song and music discrimination play a significant role in multimedia applications such as genre classification and singer identification. The problem of identifying sections of singer voice and instrument signals is addressed in this paper. It must therefore be able to detect when a singer starts and stops singing. In addition, it must be efficient in all circumstances that the interpreter is a man or a woman or that he or she has a different register (soprano, alto, baritone, tenor or bass), different styles of music and independent of the number of instruments. Our approach does not assume a priori knowledge of song and music segments. We use simple and efficient threshold-based distance measurements for discrimination. Linde-Buzo-Gray vector quantization algorithm and Gaussian Mixture Models (GMMs) are used for comparison purposes. Our approach is validated on a large experimental dataset from the music genre database RWC that includes many styles (25 styles and 272 minutes of data).
机译:歌曲和音乐的辨别在诸如类别分类和歌手识别之类的多媒体应用中起着重要作用。歌曲和音乐的辨别在诸如类别分类和歌手识别之类的多媒体应用中起着重要作用。本文解决了识别歌手声音和乐器信号部分的问题。因此,它必须能够检测歌手何时开始和停止唱歌。此外,在所有情况下,口译员是男人还是女人,或者他或她拥有不同的记号(女高音,中音,男中音,中音或贝斯),音乐的风格不同且与数量无关,必须高效。仪器。我们的方法不假定对歌曲和音乐片段有先验知识。我们使用简单有效的基于阈值的距离测量进行区分。 Linde-Buzo-Gray矢量量化算法和高斯混合模型(GMM)用于比较。我们的方法在音乐流派数据库RWC的大型实验数据集上得到了验证,该数据集包括许多样式(25种样式和272分钟的数据)。

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