听觉表征在稀疏性声源分离中的应用

J. Burred, T. Sikora
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引用次数: 21

摘要

基于稀疏性的源分离算法通常依赖于向稀疏域的变换来改善混合不相交性,从而促进分离。为此,最常用的时频表示一直是短时傅里叶变换(STFT)。本文的目的是研究使用基于听觉的表征来代替STFT。我们首先评估了语音和音乐信号的STFT不相交性,并表明基于等矩形带宽(ERB)和Bark频率尺度的听觉表示可以改善转换后的混合信号的不相交性
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the Use of Auditory Representations for Sparsity-Based Sound Source Separation
Sparsity-based source separation algorithms often rely on a transformation into a sparse domain to improve mixture disjointness and therefore facilitate separation. To this end, the most commonly used time-frequency representation has been the short time Fourier transform (STFT). The purpose of this paper is to study the use of auditory-based representations instead of the STFT. We first evaluate the STFT disjointness properties for the case of speech and music signals, and show that auditory representations based on the equal rectangular bandwidth (ERB) and Bark frequency scales can improve the disjointness of the transformed mixtures
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