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Automatic singer recognition of popular music recordings via estimation and modeling of solo vocal signals

机译:通过估计和建模个人声带信号自动识别流行音乐录音的歌手

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摘要

In this paper, we investigate the problem of automatic singer identification, detection and tracking in popular music recordings with one or multiple singers. This problem reflects an important issue in multimedia applications that require the transcription and indexing of music data to meet the increasing demand for content-based information retrieval. The major challenges for this study arise from the fact that a singer's voice tends to be arbitrarily altered from time to time and is inextricably intertwined with the signal of the background accompaniment. To determine who is singing, or whether or when a particular singer is present in a music recording, methods are presented for separating vocal from nonvocal regions, for isolating singers' vocal characteristics from background music, and for distinguishing singers from one another. Experimental evaluations conducted on a pop music database consisting of solo and duet tracks confirm the validity of the proposed methods.
机译:在本文中,我们研究了具有一个或多个歌手的流行音乐录音中歌手的自动识别,检测和跟踪问题。此问题反映了多媒体应用程序中的一个重要问题,该应用程序需要对音乐数据进行转录和索引,以满足对基于内容的信息检索不断增长的需求。这项研究的主要挑战来自这样一个事实,即歌手的声音会不时地随意改变,并且与背景伴奏的信号密不可分。为了确定谁在唱歌,或者在音乐记录中是否存在特定歌手,提出了用于将人声与非人声区域分开,将歌手的声音特征与背景音乐分离以及将歌手彼此区分开的方法。在由独奏和二重奏轨道组成的流行音乐数据库上进行的实验评估证实了所提出方法的有效性。

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