Characterization of Arabic sibilant consonants

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Abstract

The aim of this study is to develop an automatic speech recognition system in order to classify sibilant Arabic consonants into two groups: alveolar consonants and post-alveolar consonants. The proposed method is based on the use of the energy distribution, in a consonant-vowel type syllable, as an acoustic cue. The application of this method on our own corpus reveals that the amount of energy included in a vocal signal is a very important parameter in the characterization of Arabic sibilant consonants. For consonants classifications, the accuracy achieved to identify consonants as alveolar or post-alveolar is 100%. For post-alveolar consonants, the rate is 96% and for alveolar consonants, the rate is over 94%. Our classification technique outperformed existing algorithms based on support vector machines and neural networks in terms of classification rate.

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APA

Elfahm, Y., Abajaddi, N., Mounir, B., Elmaazouzi, L., Mounir, I., & Farchi, A. (2023). Characterization of Arabic sibilant consonants. International Journal of Electrical and Computer Engineering, 13(2), 1997–2008. https://doi.org/10.11591/ijece.v13i2.pp1997-2008

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