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PHASE RECONSTRUCTION OF SPECTROGRAMS BASED ON A MODEL OF REPEATED AUDIO EVENTS

机译:基于重复音频事件模型的谱图的相位重构

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Phase recovery of modified spectrograms is a major issue in audio signal processing applications, such as source separation. This paper introduces a novel technique for estimating the phases of components in complex mixtures within onset frames in the Time-Frequency (TF) domain. We propose to exploit the phase repetitions from one onset frame to another. We introduce a reference phase which characterizes a component independently of its activation times. The onset phases of a component are then modeled as the sum of this reference and an offset which is linearly dependent on the frequency. We derive a complex mixture model within on-set frames and we provide two algorithms for the estimation of the model phase parameters. The model is estimated on experimental data and this technique is integrated into an audio source separation framework. The results demonstrate that this model is a promising tool for exploiting phase repetitions, and point out its potential for separating overlapping components in complex mixtures.
机译:修改频谱图的相位恢复是音频信号处理应用中的主要问题,例如源分离。本文介绍了一种新颖的技术,用于估计时频(TF)域中的起始混合物中的复杂混合物中的组分阶段。我们建议利用将阶段重复从一个发起帧到另一个开始。我们介绍了一个参考阶段,其独立于激活时间来表征组件。然后将组件的开始阶段建模为该参考的总和和线性地取决于频率的偏移量。我们在集合帧内获得复杂的混合模型,我们提供了两个用于估计模型相位参数的算法。该模型估计在实验数据上,并且该技术集成到音频源分离框架中。结果表明,该模型是用于利用相位重复的有前途的工具,并指出其在复杂混合物中分离重叠成分的可能性。

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