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A Hybrid Selection Method of Audio Descriptors for Singer Identification in North Indian Classical Music

机译:北印度古典音乐中歌手识别的音频描述符混合选择方法

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Singer identification is most important application of Music information retrieval. The process starts with identifying first the audio descriptors then using these feature vectors as input to further classification using Gaussian Mixture Model or Hidden Markov Model as classifiers to identify the singer. The process becomes chaotic if all audio descriptors are used for finding the feature vector, instead if the audio descriptors are selected with respect to the application then the process becomes comparatively simple. In this paper we propose a Hybrid method of selecting correct audio descriptors for the identification of singer of North Indian Classical Music. First only strong (primary) audio descriptors are released on the system in forward pass and the classification impact is to be recorded. Then only selecting the top few audio descriptors having largest impact on the singer identification process are selected and rest are eliminated in the backward pass. Then selecting and releasing all the less significant audio descriptors from the groups that had maximum impact on singer identification process increases the success of correctly identifying the singer. The method reduces substantially the large number of audio descriptors to few, important audio descriptors. The selected audio descriptors are then fed as input to further classifiers.
机译:歌手识别是音乐信息检索的最重要应用。该过程开始于首先识别音频描述符,然后将这些特征向量用作输入,以使用高斯混合模型或隐马尔可夫模型作为分类器进行进一步分类,以识别歌手。如果使用所有音频描述符来查找特征向量,则该过程变得混乱,相反,如果相对于应用选择了音频描述符,则该过程变得相对简单。在本文中,我们提出了一种选择正确的音频描述符的混合方法,用于识别北印度古典音乐的歌手。首先,只有强(主要)音频描述符在系统中以正向方式发布,并记录分类影响。然后,仅选择对歌手识别过程有最大影响的前几个音频描述符,并在后向传递中消除其余的音频描述符。然后从对歌手识别过程影响最大的组中选择并释放所有不太重要的音频描述符,可以提高正确识别歌手的成功率。该方法将大量的音频描述符实质上减少为很少的重要音频描述符。然后将选定的音频描述符作为输入提供给其他分类器。

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