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This paper proposes a Gaussian mixture model (GMM)-based music discrimination system for mobile broadcasting receivers. The objective of the system is automatically archiving music signals from audio broadcasting programs that are normally mixed with human voices, acoustic noises, commercial advertisements, and so on. To enhance the robustness of the system performance and to sharply cut the starting/ending-point of the recording, we also introduce a post-processing module whose features consist of signal duration, energy dynamics, and local variation of feature statistics. Experimental results to various input signals verify the superiority of the proposed system.
Author (s): Kang, Hong; Kang, Hyun; Song, Myung
Affiliation:
Yonsei University; Kangnam University
(See document for exact affiliation information.)
Publication Date:
2008-08-06
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Session subject:
Audio for Mobile & Handheld Devices: Signal Processing
Permalink: https://aes2.org/publications/elibrary-page/?id=14426
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Kang, Hong; Kang, Hyun; Song, Myung; 2008; Discrimination of Music Signals for Mobile Broadcasting Receivers [PDF]; Yonsei University; Kangnam University; Paper 17; Available from: https://aes2.org/publications/elibrary-page/?id=14426
Kang, Hong; Kang, Hyun; Song, Myung; Discrimination of Music Signals for Mobile Broadcasting Receivers [PDF]; Yonsei University; Kangnam University; Paper 17; 2008 Available: https://aes2.org/publications/elibrary-page/?id=14426