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Evaluation of Speech Enhancement Based on Pre-Image Iterations Using Automatic Speech Recognition

Autor*innen:
Leitner, Christina; Morales-Cordovilla, Juan A.; Pernkopf, Franz
Abstract:
Recently, we developed pre-image iteration methods for single-channel speech enhancement. We used objective quality measures for evaluation. In this paper, we evaluate the de-noising capabilities of pre-image iterations using an automatic speech recognizer trained on clean speech data. In particular, we provide the word recognition accuracy of the de-noised utterances using white and car noise at 0, 5, 10, and 15 dB signal-to-noise ratio (SNR). Empirical results show that the utterances processed by pre-image iterations achieve a consistently better word recognition accuracy for both noise types and all SNR levels compared to the noisy data and the utterances processed by the generalized subspace speech enhancement method.
Titel:
Evaluation of Speech Enhancement Based on Pre-Image Iterations Using Automatic Speech Recognition
Herausgeber (Verlag):
IEEE
Seiten:
1801 - 1805
Publikationsdatum
2014-09

Publikationsreihe

Herausgeber(Verlag)
IEEE
Adresse
Lisbon, Portugal
Proceedings
22nd European Signal Processing Conference (EUSIPCO)
Weitere Dateien und links
Jahr/Monat:
2014

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