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Musical Sound Separation Based on Binary Time-Frequency Masking

机译:基于二进制时频掩蔽的音乐声音分离

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The problem of overlapping harmonics is particularly acute in musical sound separation and has not been addressed adequately. We propose a monaural system based on binary time-frequency masking with an emphasis on robust decisions in time-frequency regions, where harmonics from different sources overlap. Our computational auditory scene analysis system exploits the observation that sounds from the same source tend to have similar spectral envelopes. Quantitative results show that utilizing spectral similarity helps binary decision making in overlapped time-frequency regions and significantly improves separation performance.
机译:谐波重叠的问题在音乐声音分离中尤为严重,尚未得到充分解决。我们提出了一种基于二进制时频掩膜的单声道系统,重点是时频区域中的稳健决策,在该时频区域中,来自不同源的谐波重叠。我们的计算听觉场景分析系统利用了这样的观察:来自相同来源的声音往往具有相似的频谱包络。定量结果表明,利用光谱相似性有助于在重叠的时频区域中进行二元决策,并显着提高分离性能。

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