Speech/music discrimination for analysis of radio stations

Stanisław Kacprzak, Blazej Chwiecko, Bartosz Ziółko · 2017

A computationally efficient feature, called Minimum Energy Density (MED) was applied to discriminate audio signals between speech and music in the radio stations programs. The presented binary classifier is based on testing two features: energy distribution and differences between energy in channels. We analyzed 240 hours of signals, from 10 Polish radio stations. Our analysis enables us to provide information about content of particular radio stations.

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