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A Probabilistic Approach to Single Channel Blind Signal Separation

机译:单通道盲信号分离的概率方法

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We present a new technique for achieving source separation when given only a single channel recording. The main idea is based on exploiting the inherent time structure of sound sources by learning a priori sets of basis filters in time domain that encode the sources in a statistically efficient manner. We derive a learning algorithm using a maximum likelihood approach given the observed single channel data and sets of basis filters. For each time point we infer the source signals and their contribution factors. This inference is possible due to the prior knowledge of the basis filters and the associated coefficient densities. A flexible model for density estimation allows accurate modeling of the observation and our experimental results exhibit a high level of separation performance for mixtures of two music signals as well as the separation of two voice signals.
机译:我们在仅给出单通道录制时,介绍了实现源分离的新技术。主要思想是基于利用声音源的固有时间结构来学习以统计有效的方式编码源的时域中的先验基础滤波器。我们使用最大似然方法获得了学习算法,给出了观察到的单通道数据和基础滤波器组。对于每个时间点,我们推断源信号及其贡献因素。由于基础滤波器的先验知识和相关系数密度,因此可能是可能的。灵活的密度估计模型允许准确的观察建模,我们的实验结果表现出高水平的两个音乐信号的混合物的分离性能以及两个语音信号的分离。

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