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A Tandem Algorithm for Singing Pitch Extraction and Voice Separation From Music Accompaniment

机译:从音乐伴奏中唱歌音高提取和语音分离的串联算法

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摘要

Singing pitch estimation and singing voice separation are challenging due to the presence of music accompaniments that are often nonstationary and harmonic. Inspired by computational auditory scene analysis (CASA), this paper investigates a tandem algorithm that estimates the singing pitch and separates the singing voice jointly and iteratively. Rough pitches are first estimated and then used to separate the target singer by considering harmonicity and temporal continuity. The separated singing voice and estimated pitches are used to improve each other iteratively. To enhance the performance of the tandem algorithm for dealing with musical recordings, we propose a trend estimation algorithm to detect the pitch ranges of a singing voice in each time frame. The detected trend substantially reduces the difficulty of singing pitch detection by removing a large number of wrong pitch candidates either produced by musical instruments or the overtones of the singing voice. Systematic evaluation shows that the tandem algorithm outperforms previous systems for pitch extraction and singing voice separation.
机译:由于音乐伴奏的存在常常是不稳定的和谐音的,因此唱歌音高估计和唱歌声音分离具有挑战性。受计算听觉场景分析(CASA)的启发,本文研究了一种串联算法,该算法可估计歌唱音调并联合和迭代地分离歌声。首先估计粗略音高,然后通过考虑泛音和时间连续性将其用于分离目标歌手。分开的歌声和估计的音调被用来互相改善。为了提高处理音乐记录的串联算法的性能,我们提出了一种趋势估计算法来检测每个时间帧中歌声的音调范围。通过消除由乐器或歌声的泛音产生的大量错误的音调候选,检测到的趋势大大降低了歌唱音调检测的难度。系统评价表明,串联算法优于以前的音高提取和歌声分离系统。

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