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ICASSP
2010
IEEE

Perceptual audio features for unsupervised key-phrase detection

13 years 4 months ago
Perceptual audio features for unsupervised key-phrase detection
We propose a new type of audio feature (HFCC-ENS) as well as an unsupervised method for detecting short sequences of spoken words (key-phrases) within long speech recordings. Our technical contributions are threefold: Firstly, we propose to use bandwidth-adapted filterbanks instead of classical MFCC-style filters in the feature extraction step. Secondly, the time resolution of the resulting features is adapted to account for the temporal characteristics of the spoken phrases. Thirdly, the key-phrase detection step is performed by matching sequences of the resulting HFCC-ENS features with features extracted from a target speech recording. We evaluate the proposed method using the German Kiel Corpus and furthermore investigate speech-related properties of the proposed feature.
Dirk von Zeddelmann, Frank Kurth, Meinard Mül
Added 06 Dec 2010
Updated 06 Dec 2010
Type Conference
Year 2010
Where ICASSP
Authors Dirk von Zeddelmann, Frank Kurth, Meinard Müller
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