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Robust Cochlear-Model-Based Speech Recognition (CROSBI ID 259216)

Prilog u časopisu | izvorni znanstveni rad | međunarodna recenzija

Russo, Mladen ; Stella, Maja ; Sikora, Marjan ; Pekić, Vesna Robust Cochlear-Model-Based Speech Recognition // Computers (Basel), 8 (2019), 1; 5, 11. doi: 10.3390/computers8010005

Podaci o odgovornosti

Russo, Mladen ; Stella, Maja ; Sikora, Marjan ; Pekić, Vesna

engleski

Robust Cochlear-Model-Based Speech Recognition

Accurate speech recognition can provide a natural interface for human–computer interaction. Recognition rates of the modern speech recognition systems are highly dependent on background noise levels and a choice of acoustic feature extraction method can have a significant impact on system performance. This paper presents a robust speech recognition system based on a front-end motivated by human cochlear processing of audio signals. In the proposed front-end, cochlear behavior is first emulated by the filtering operations of the gammatone filterbank and subsequently by the Inner Hair cell (IHC) processing stage. Experimental results using a continuous density Hidden Markov Model (HMM) recognizer with the proposed Gammatone Hair Cell (GHC) coefficients are lower for clean speech conditions, but demonstrate significant improvement in performance in noisy conditions compared to standard Mel-Frequency Cepstral Coefficients (MFCC) baseline.

speech recognition ; cochlea ; Gammatone filterbank ; IHC ; HMM

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Podaci o izdanju

8 (1)

2019.

5

11

objavljeno

2073-431X

10.3390/computers8010005

Povezanost rada

Informacijske i komunikacijske znanosti

Poveznice