Evaluation of emerging frequency domain convolutive blind source separation algorithms based on real room recordings

S. M. Naqvi, Y. Zhang, T. Tsalaile, S. Sanei, J. Chambers
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引用次数: 2

Abstract

This paper presents a comparative study of three of the emerging frequency domain convolutive blind source separation (FDCBSS) techniques i.e. convolutive blind separation of non-stationary sources due to Parra and Spence, penalty function-based joint diagonalization approach for convolutive blind separation of nonstationary sources due to Wang et al. and a geometrically constrained multimodal approach for convolutive blind source separation due to Sanei et al. Objective evaluation is performed on the basis of signal to interference ratio (SIR), performance index (PI) and solution to the permutation problem. The results confirm that a multimodal approach is necessary to properly mitigate the permutation in BSS and ultimately to solve the cocktail party problem. In other words, it is to make BSS semiblind by exploiting prior geometrical information, and thereby providing the framework to find robust solutions for more challenging source separation with moving speakers.
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基于真实房间记录的新兴频域卷积盲源分离算法评价
本文对三种新兴的频域卷积盲源分离(FDCBSS)技术进行了比较研究,即Parra和Spence提出的非平稳源的卷积盲分离技术、Wang等人提出的基于罚函数的卷积盲分离联合对角化方法以及Sanei等人提出的卷积盲源分离的几何约束多模态方法。根据信干扰比(SIR)、性能指数(PI)和排列问题的解进行客观评价。结果证实了多模态方法对于适当减轻BSS中的排列并最终解决鸡尾酒会问题是必要的。换句话说,它是通过利用先验几何信息使BSS半盲,从而提供框架,以找到更具有挑战性的移动扬声器源分离的鲁棒解决方案。
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