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Time-frequency ratio-based blind separation methods for attenuated and time-delayed sources

机译:基于时频比的衰减源和时滞源盲分离方法

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We propose two types of time-frequency (TF) blind source separation (BSS) methods suited to attenuated and delayed (AD) mixtures. These approaches, inspired from a method that we previously developed for linear instantaneous (LI) mixtures, almost only require each source to occur alone in a tiny TF zone, i.e. they set very limited constraints on the source sparsity and overlap, unlike various previously reported TF-BSS methods. Our approaches consist in identifying the columns of the (filtered permuted) mixing matrix in TF zones where these methods detect that a single source occurs, using Time-Frequency Ratios Of Mixtures (hence their name TIFROM). We thus identify columns of scale coefficients and time shifts. The detection stage for time shifts uses regression lines associated to the above-mentioned TF ratios of mixtures. The detection stage for scale coefficients uses the variance of these TF ratios of mixtures, either in Constant-Time or in Constant-Frequency analysis zones. This yields two alternative BSS methods, which are resp. called AD-TIFROM-CT and AD-TIFROM-CF. These methods are especially suited to non-stationary sources. We derive their performance from many tests performed with AD mixtures of speech signals. This demonstrates that they yield major SNR improvements, i.e. about 45 dB with optimum parameters for time shifts ranging from 0 to 20 samples and above 18 dB for 200-sample time shifts.
机译:我们提出两种类型的时频(TF)盲源分离(BSS)方法,适用于衰减和延迟(AD)混合物。这些方法的灵感来自于我们先前针对线性瞬时(LI)混合物开发的方法,几乎​​仅要求每个光源单独在一个微小的TF区域中发生,即,它们对光源稀疏性和重叠性设置了非常有限的约束,这不同于先前报道的各种方法。 TF-BSS方法。我们的方法包括使用混合时频比(因此名称为TIFROM)识别TF区域中(过滤的置换)混合矩阵的列,在这些区域中这些方法可检测到单个来源。因此,我们确定了比例系数和时移列。时移的检测阶段使用与上述混合物的TF比相关的回归线。比例系数的检测阶段使用恒定时间或恒定频率分析区域中混合物的这些TF比率的方差。这产生了两种替代的BSS方法,分别是。称为AD-TIFROM-CT和AD-TIFROM-CF。这些方法特别适合于非平稳源。我们从语音信号的AD混合进行的许多测试中得出它们的性能。这表明它们可产生重大的SNR改善,即约有45 dB的最佳参数,适用于0至20个样本的时移,而200个样本的时移则高于18 dB。

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