Harmonic and percussive source separation using a convolutional auto encoder | IEEE Conference Publication | IEEE Xplore

Harmonic and percussive source separation using a convolutional auto encoder


Abstract:

Real world audio signals are generally a mixture of harmonic and percussive sounds. In this paper, we present a novel method for separating the harmonic and percussive au...Show More

Abstract:

Real world audio signals are generally a mixture of harmonic and percussive sounds. In this paper, we present a novel method for separating the harmonic and percussive audio signals from an audio mixture. Proposed method involves the use of a convolutional auto-encoder on a magnitude of the spectrogram to separate the harmonic and percussive signals. This network structure enables automatic high-level feature learning and spectral domain audio decomposition. An evaluation was performed using professionally produced music recording. Consequently, we confirm that the proposed method provides superior separation performance compared to conventional methods.
Date of Conference: 28 August 2017 - 02 September 2017
Date Added to IEEE Xplore: 26 October 2017
ISBN Information:
Electronic ISSN: 2076-1465
Conference Location: Kos, Greece

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