A Probabilistic Approach to Single Channel Blind Signal Separation

Jang, Gil-jin, Lee, Te-Won

Neural Information Processing Systems 

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.

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