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New analytical update rule for TDOA inference for underdetermined BSS in noisy environments

机译:嘈杂环境中未确定的BSS的TDOA推断的新分析更新规则

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In this paper, we propose a new technique for sparseness-based underdetermined BSS that is based on the clustering of the frequency-dependent time difference of arrival (TDOA) information and that can cope with diffused noise environments. Such a method with an EM algorithm has already been proposed, however, it required a time-consuming exhaust search for TDOA inference. To remove the need for such an exhaust search, we propose a new technique by focusing on a stereo case. We derive an update rule for analytical TDOA estimation. This update rule eliminates the need for the exhaustive TDOA search, and therefore reduces the computational load. We show experimental results for separation performance and calculation time in comparison with those obtained with the conventional approach. Our reported results validate our proposed method, that is, our proposed method achieves high performance without a high computational cost.
机译:在本文中,我们提出了一种基于稀疏的欠定BSS的新技术,该技术基于频率相关的到达时间差(TDOA)信息的聚类,并且可以应对分散的噪声环境。已经提出了使用EM算法的这种方法,但是,它需要耗时的穷举搜索来进行TDOA推断。为了消除对这种穷举搜索的需求,我们通过关注立体声盒提出了一种新技术。我们导出了用于分析TDOA估计的更新规则。此更新规则消除了对详尽TDOA搜索的需要,因此减少了计算量。与常规方法相比,我们显示了分离性能和计算时间的实验结果。我们的报告的结果验证了我们提出的方法,也就是说,我们提出的方法在没有高计算成本的情况下实现了高性能。

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