Method for realizing background noise suppressing based on multiple statistics model and minimum mean square error
A minimum mean square error, background noise technology, applied in speech analysis, speech recognition, instruments, etc., can solve the problem of not being able to simulate the real situation well
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[0057] Most speech input models for communication applications have the characteristics of single-channel speech input and additive background noise. The present invention relates to the noise suppression problem under this model. Aiming at the problem of noise suppression, the present invention proposes an adaptive filtering method based on multiple statistical models. figure 1 Shown is the framework principle of the whole method. The present invention uses short-time Fourier transform to transform the input signal into the frequency domain, and then uses the parameters obtained in the previous frame to calculate the estimation of the real and imaginary parts of each frequency component of the speech signal in the current input frame, and then calculates the speech existence probability and corrects the speech Signal estimation, after updating the current parameter estimation, use short-time inverse Fourier transform to obtain the suppressed speech.
[0058] The steps of the spe...
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