SPEECH SEPARATION ELY KURTOSIS

James P. LeBlaric · 1998

We present a computationally efficient method of separating mixed speech signals. The nicthod uses a recursive adaptive gradient descent technique with the cost functim designed to maximize the kurtosis of the output (separated) signals. The choice of kurtosis maximization as an objective function (which acts as a measure of separation) is supported by experiments with a number of speech signals as well as spherically invario.nt random processes (SIRP's) which are regarded as excellent statistical models for speech. Development and analysis of the adaptive algorithm is presented. Simulation examples using actual voice signals a.re presented.

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