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An Acoustic-Phonetic Model of F0 Likelihood for Vocal Melody Extraction

机译:语音旋律提取的F0似然性的语音模型

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This paper presents a novel approach to extraction of vocal melodies from accompanied singing recordings. Central to our approach is a model of vocal fundamental frequency (F0) likelihood that integrates acoustic-phonetic knowledge and real-world data. This model consists of a timbral fitness score and a loudness measure of each F0 candidate. Timbral fitness is measured for the partial amplitudes of an F0 candidate, with respect to a small set of vocal timbre examples. This F0-specific measurement of timbral fitness depends on an acoustic-phonetic F0 modification of each timbre example. In the loudness part of the likelihood model, sinusoids are detected, tracked, and pruned to give loudness values that minimize interference from the accompaniment. A final F0 estimate is determined by a prior model of F0 sequence in addition to the likelihood model. Melody extraction is completed by detecting voiced time positions according to the singing voice loudness variations given by the estimated F0 sequence. The numerical parameters involved in our approach were optimized on three development sets from different sources before the system was evaluated on ten test sets separate from these development sets. Controlled experiments show that use of the timbral fitness score accounts for a 13% difference in overall accuracy.
机译:本文提出了一种从伴随唱歌录音中提取人声旋律的新颖方法。我们方法的核心是将语音知识与真实世界数据集成在一起的语音基本频率(F0)可能性模型。该模型由每个F0候选者的音色适应度得分和响度度量组成。相对于一小部分人声音色示例,针对F0候选音的部分幅度测量音色适应度。特定于F0的音调适应度测量取决于每个音色示例的音素F0修改。在似然模型的响度部分,对正弦波进行检测,跟踪和修剪,以提供使响度值最小化的响度值。最终的F0估计值由似然模型之外的F0序列的先验模型确定。通过根据估计的F0序列给出的歌声响度变化,通过检测浊音时间位置来完成旋律提取。在对来自不同来源的十个测试集进行系统评估之前,对来自不同来源的三个开发集进行了优化,涉及了我们的方法的数值参数。对照实验表明,使用音色适应度评分可在总体准确性上造成13%的差异。

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