A novel approach for content based audio classification is presented based on multiscale spectro-temporal modulation features extracted using a model of auditory cortex. The task is to discriminate speech from non-speech which consists of animal vocalizations, music and environmental sounds. Generalization of the system to signals in high level of additive noise and reverberation is evaluated and compared to two existing approaches. The results demonstrate the advantages of the auditory model over the other two systems, especially at low SNR and high reverberation.
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Mesgarani et al. (2004) studied this question.
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